Magnetic sensing element
Claim Score by NHIP
Abstract
A magnetic sensing element comprising a composite film having a center portion and two side portions, a second antiferromagnetic layer, a chromium nonmagnetic layer, and third antiferromagnetic layers is provided. The composite film comprises a first antiferromagnetic layer; a pinned magnetic layer on the first antiferromagnetic layer; a nonmagnetic material layer on the pinned magnetic layer; and a free magnetic layer on the nonmagnetic material layer. The second antiferromagnetic layer is disposed on the free magnetic layer. The chromium nonmagnetic layer is disposed on the second antiferromagnetic layer at the center portion. The third antiferromagnetic layers are disposed on the second antiferromagnetic layer at the two side portions. The magnetization direction in the two side portions of the free magnetic layer is pinned in the track width direction and the magnetization direction in the center portion is rotatable in response to external magnetic fields.

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Projected expiry passed 12 September 2023, 3 years ago.
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32 claims: 2 independent, 30 dependent
- 1Broadest claimClaim Score 59, broad(NHIP)A magnetic sensing element comprising:a composite film having a center portion and two side portions, the composite film comprising: a first antiferromagnetic layer;a pinned magnetic layer on the first antiferromagnetic layer;a nonmagnetic material layer on the pinned magnetic layer;and a free magnetic layer on the nonmagnetic material layer;a second antiferromagnetic layer on the free magnetic layer;a chromium nonmagnetic layer disposed on the second antiferromagnetic layer at the center portion;and third antiferromagnetic layers disposed on the second antiferromagnetic layer at the two side portions.
- 10A magnetic sensing element comprising:a composite film having a center portion and two side portions, the composite film comprising: a first antiferromagnetic layer;a pinned magnetic layer on the first antiferromagnetic layer;a nonmagnetic material layer on the pinned magnetic layer;and a free magnetic layer on the nonmagnetic material layer;second antiferromagnetic layers disposed on the free magnetic layer at the two side portions;chromium nonmagnetic layers disposed on the second antiferromagnetic layers;and third antiferromagnetic layers disposed on the chromium nonmagnetic layers.
Independent claims2
486 paragraphs in 5 sections, as filed
BACKGROUND OF THE INVENTION
P-0001[0001] 1. Field of the Invention
P-0002[0002] The present invention relates generally to magnetic sensing elements for use in hard disk devices and magnetic sensors. In particular, it relates to a magnetic sensing element having excellent read characteristics that can adequately control the magnetization of free magnetic layers even with narrower tracks and to a method for fabricating the same.
P-0003[0003] 2. Description of the Related Art
P-0004[0004]FIG. 36 is a partial cross-sectional view of a conventional magnetic sensing element viewed from the face that opposes a recording medium. Hereinafter, this face is referred to as the “opposing face”.
P-0005[0005] Referring to FIG. 36, a composite film <b>108</b> is formed on a substrate <b>101</b>. The composite film <b>108</b> is constituted from an antiferromagnetic layer <b>102</b>, a pinned magnetic layer <b>103</b>, a nonmagnetic material layer <b>104</b>, and a free magnetic layer <b>105</b>. A hard bias layer <b>106</b> is disposed at each side of the composite film <b>108</b>. An electrode layer <b>107</b> is formed on each hard bias layer <b>106</b>.
P-0006[0006] The magnetization of the pinned magnetic layer <b>103</b> is pinned in the Y direction in the drawing by an exchange coupling magnetic field generated between the pinned magnetic layer <b>103</b> and the antiferromagnetic layer <b>102</b>. The magnetization of the free magnetic layer <b>105</b> is oriented in the X direction in the drawing by a longitudinal bias magnetic field.
P-0007[0007] As shown in FIG. 36, the track width Tw is determined by the width of the free magnetic layer <b>105</b> in the track width direction (the X direction). The track width Tw is becoming ever smaller as recording densities become higher.
P-0008[0008] However, the magnetic sensing element having the structure shown in FIG. 36 cannot properly control the magnetization direction of the free magnetic layer <b>105</b> when the track width is small.
P-0009[0009] First, according to the structure shown in FIG. 36, the width of the free magnetic layer <b>105</b> must be decreased to read narrower tracks. As the track becomes narrower, regions in the free magnetic layer <b>105</b> affected by strong longitudinal bias magnetic fields from the hard bias layers <b>106</b> occupy large portions of the free magnetic layer <b>105</b>. The regions affected by the strong longitudinal bias magnetic fields then form dead regions that do not readily respond to external magnetic fields. Since the dead regions relatively expand, the sensitivity of the magnetic sensing element is degraded as the tracks become narrower.
P-0010[0010] Secondly, the hard bias layer <b>106</b> may easily become magnetically discontinuous from the free magnetic layer <b>5</b>. This problem is particularly acute when a bias underlayer composed of Cr is provided between the hard bias layer <b>106</b> and the free magnetic layer <b>105</b>.
P-0011[0011] Such magnetic discontinuity intensifies the adverse effects of demagnetizing fields at the two ends of the free magnetic layer <b>105</b> in the track width direction, often resulting in a magnetization disturbance in the free magnetic layer <b>105</b>, i.e., a buckling phenomenon. The buckling phenomenon occurs more frequently over large areas in the free magnetic layer <b>105</b> as the track becomes narrower. This results in instability in the read waveform.
P-0012[0012] Thirdly, as the gap becomes narrower, part of the longitudinal bias magnetic fields from the hard bias layers <b>106</b> escapes to shield layers (not shown) disposed above and below the magnetic sensing element shown in FIG. 36. This disturbs the magnetization state of the shield layers and weakens the longitudinal bias magnetic field supplied to the free magnetic layer <b>105</b>. Thus, the magnetization of the free magnetic layer <b>105</b> cannot be properly controlled.
P-0013[0013] Recently, in order to overcome these problems, exchange bias methods are beginning to be employed to control the magnetization of the free magnetic layer <b>105</b>. One exchange bias method provides an antiferromagnetic layer disposed on a free magnetic layer.
P-0014[0014] A magnetic sensing element of an exchange bias type is manufactured, for example, through the steps shown in FIGS. 37 and 38. FIGS. 37 and 38 are partial cross-sectional views of the magnetic sensing element viewed from the opposing face.
P-0015[0015] In the step shown in FIG. 37, an antimagnetic layer <b>2</b> composed of a PtMn alloy is formed on a substrate <b>1</b>. Then a pinned magnetic layer <b>3</b> composed of a magnetic material, a nonmagnetic material layer <b>4</b>, and a free magnetic layer <b>5</b> composed of a magnetic material are deposited on the antimagnetic layer <b>2</b>. A Ta film <b>9</b> for preventing oxidation of the free magnetic layer <b>5</b> when exposed to air is formed on the free magnetic layer <b>5</b>.
P-0016[0016] As shown in FIG. 37, a lift-off resist layer <b>10</b> is then formed on the Ta film <b>9</b>. Part of the Ta film <b>9</b> not covered with the resist layer <b>10</b> is completely removed by ion milling. At this time, part of the free magnetic layer <b>5</b> under the Ta film <b>9</b> is also removed. The removed portion is indicated by broken lines in the drawing.
P-0017[0017] Next, in the step shown in FIG. 38, a ferromagnetic layer <b>11</b>, a second antiferromagnetic layer <b>12</b> composed of an IrMn alloy, and an electrode layer <b>13</b> are sequentially formed on each of the exposed portions of the free magnetic layer <b>5</b> at the two sides of the resist layer <b>10</b>. The liftoff resist layer <b>10</b> is removed at the end to complete the exchange bias magnetic sensing element.
P-0018[0018] In the magnetic sensing element shown in FIG. 38, the track width Tw is determined by the gap between the ferromagnetic layers <b>11</b> in the track width direction (the X direction in the drawing). The magnetization directions of the ferromagnetic layers <b>11</b> are firmly pinned in the X direction in the drawing by exchange coupling magnetic fields generated between the ferromagnetic layers <b>11</b> and the second antiferromagnetic layers <b>12</b>. As a result, two side portions A of the free magnetic layer <b>5</b> located under the ferromagnetic layers <b>11</b> are strongly magnetized in the X direction by ferromagnetic coupling with the ferromagnetic layers <b>11</b>. On the other hand, the central portion B of the free magnetic layer <b>5</b> in the track width Tw region is only weakly magnetized to be in a single magnetic domain state such that the magnetization of the central portion B can rotate in response to external magnetic fields.
P-0019[0019] The exchange bias magnetic sensing element manufactured through the steps shown in FIGS. 37 and 38, however, has the following problems.
P-0020[0020] First, during the ion milling in the step shown in FIG. 37, not only the Ta film <b>9</b> but also part of the free magnetic layer <b>5</b> is removed. Moreover, inert gas, such as Ar, used during the ion milling readily enters the free magnetic layer <b>5</b>. This damage in the free magnetic layer <b>5</b> destroys the crystal structure in surface portions <b>5</b><i>a </i>of the free magnetic layer <b>5</b> and causes lattice defects (a so-called mixing effect). As a result, the magnetic characteristics of the surface portions <b>5</b><i>a </i>of the free magnetic layer <b>5</b> are often degraded.
P-0021[0021] Ideally, only the Ta film <b>9</b> is removed during ion milling in the step shown in FIG. 37 without removing the free magnetic layer <b>5</b>. However, in practice, it is difficult to control the milling operation in such a manner because of the thickness of the Ta film <b>9</b>. The Ta film <b>9</b> is formed to have a thickness of approximately 30 to 50 Å. Such a large thickness is required to properly prevent the oxidation of the free magnetic layer <b>5</b>.
P-0022[0022] When the Ta film <b>9</b> is exposed to air or field-annealed to generate exchange coupling magnetic fields between the pinned magnetic layer <b>3</b> and the ferromagnetic layer <b>11</b> and between the antimagnetic layer <b>2</b> and the second antiferromagnetic layer <b>12</b>, the oxidized portion expands, and the entire thickness of the Ta film <b>9</b> becomes larger than that immediately after deposition. For example, a Ta film <b>9</b> having a thickness of approximately 30 Å immediately after deposition may expand to approximately 45 Å in thickness by the oxidation.
P-0023[0023] In order to effectively mill the Ta film <b>9</b> expanded by the oxidation, high-energy is required. Since high-energy ion milling has a high milling rate, it is almost impossible to stop milling at the moment the Ta film <b>9</b> is completely removed. In other words, when the energy is high, the margin of position for stopping the milling must be set large. Accordingly, part of the free magnetic layer <b>5</b> under the Ta film <b>9</b> is removed, and significant damage is inflicted on the free magnetic layer <b>5</b> by high-energy ion milling, resulting in degradation of the magnetic characteristics.
P-0024[0024] Secondly, it is difficult to stop ion milling partway of the free magnetic layer <b>5</b> shown in FIG. 37 because the free magnetic layer <b>5</b> is formed to have a thickness of 30 to 40 Å and is milled using high energy. In the worst case, the two side portions A of the free magnetic layer <b>5</b> may be completely removed by ion milling. As described above, because the thickness of the free magnetic layer <b>5</b> is small, it is difficult to stop ion milling partway of the free magnetic layer <b>5</b>.
P-0025[0025] Thirdly, the surface of the free magnetic layer <b>5</b> exposed to the ion milling exhibits degraded magnetic characteristics due to the damage inflicted by the milling. Thus, the magnetic coupling (ferromagnetic exchange interaction) between the free magnetic layer <b>5</b> and the ferromagnetic layers <b>11</b> is insufficient. As a result, the thickness of the ferromagnetic layers <b>11</b> must be increased.
P-0026[0026] However, when the thickness of the ferromagnetic layers <b>11</b> is increased, the exchange coupling magnetic fields with the second antiferromagnetic layers <b>12</b> become weak. As a result, the magnetization of the two side portions A of the free magnetic layer <b>5</b> cannot be firmly pinned. This causes a problem of side reading. The resulting magnetic sensing element cannot properly meet the demand for narrower tracks.
P-0027[0027] Moreover, when the thickness of the ferromagnetic layers <b>11</b> is excessively large, static magnetic fields from ends of the ferromagnetic layers <b>11</b> may readily reach the central portion B of the free magnetic layer <b>5</b>, thereby degrading the sensitivity of the central portion B, which has a rotatable magnetization in response to external magnetic fields.
P-0028[0028] As described above, it has been impossible to manufacture a magnetic sensing element that can meet the demand for narrower tracks through the above-described steps of milling the two side portions of the Ta film <b>9</b> to expose the free magnetic layer <b>5</b> and depositing the ferromagnetic layers <b>11</b> and the second antiferromagnetic layers <b>12</b> on the exposed portions of the free magnetic layer <b>5</b>. This is because the magnetization of the free magnetic layer <b>5</b> cannot be properly controlled in this structure.
SUMMARY OF THE INVENTION
P-0029[0029] Accordingly, it is an object of the present invention to provide an exchange-bias magnetic sensing element that can properly control the magnetization of a free magnetic layer and that can meet the trend for narrower tracks.
P-0030[0030] A first aspect of the present invention provides a magnetic sensing element comprising a composite film having a center portion and two side portions, a second antiferromagnetic layer, a chromium nonmagnetic layer, and third antiferromagnetic layers. The composite film comprises a first antiferromagnetic layer; a pinned magnetic layer on the first antiferromagnetic layer; a nonmagnetic material layer on the pinned magnetic layer; and a free magnetic layer on the nonmagnetic material layer. The second antiferromagnetic layer is disposed on the free magnetic layer. The chromium nonmagnetic layer is disposed on the second antiferromagnetic layer at the center portion. The third antiferromagnetic layers are disposed on the second antiferromagnetic layer at the two side portions.
P-0031[0031] According to this structure, the magnetization directions of the two side portions of the free magnetic layer can be properly pinned in the track width direction by exchange coupling magnetic fields with the antiferromagnetic layers. The center portion of the free magnetic layer is moderately put in a single-magnetic-domain state so that the center portion can respond to external magnetic fields.
P-0032[0032] The chromium nonmagnetic layer on the second antiferromagnetic layer at the center portion protects the second antiferromagnetic layer from oxidation by exposure to air. The chromium nonmagnetic layer may extend between the second antiferromagnetic layer and each of the third antiferromagnetic layers.
P-0033[0033] Since the free magnetic layer is covered by the second antiferromagnetic layer, the free magnetic layer does not suffer from damage inflicted by ion milling.
P-0034[0034] The chromium nonmagnetic layer is a dense layer, and the oxidation rarely progresses in the thickness direction when exposed to air. The thickness of the chromium nonmagnetic layer need not be large to protect the underlying layers from oxidation. Thus, low-energy ion milling can be employed, and a magnetic sensing element that can effectively be used with narrow tracks can be manufactured. Moreover, with the chromium nonmagnetic layer, the exchange coupling magnetic field (Hex) between the second antiferromagnetic layer and the free magnetic layer can become larger.
P-0035[0035] When the chromium nonmagnetic layer is provided between the second antiferromagnetic layer and each of the third antiferromagnetic layers, the thickness of the chromium nonmagnetic layer is preferably larger in the center portion than in the two side portions.
P-0036[0036] Preferably, the average thickness of the chromium nonmagnetic layer in the two side portions is 3 Å or less. The average thickness of the chromium nonmagnetic layer in the two side portions may be in the range of 0.2 to 1.0 Å. Moreover, the third antiferromagnetic layers may be in contact with the second antiferromagnetic layer without the chromium nonmagnetic layer therebetween.
P-0037[0037] With a chromium nonmagnetic layer having a thickness of 3 Å or less, an antiferromagnetic interaction easily occurs between the second antiferromagnetic layer and the third antiferromagnetic layer at the two side portions. Thus the second antiferromagnetic layer and the third antiferromagnetic layer function as one antiferromagnetic layer that properly firmly pin the magnetization directions of the two side portions of the free magnetic layer.
P-0038[0038] Preferably, the thickness of the chromium nonmagnetic layer is in the range of 2 to 10 Å, and more preferably in the range of 2 to 5 Å in the center portion.
P-0039[0039] Preferably, the second antiferromagnetic layer is nonantiferromagnetic in the center portion and antiferromagnetic in the two side portions.
P-0040[0040] When the center portion of the second antiferromagnetic layer is nonantiferromagnetic, it rarely transforms into an ordered structure by field annealing. Thus, no exchange coupling magnetic field is generated between the second antiferromagnetic layer and the free magnetic layer at the center portion, and the magnetization direction of the center portion of the free magnetic layer is not firmly pinned in a certain direction. Since the second antiferromagnetic layer and the third antiferromagnetic layers function as one layer, the second antiferromagnetic layer at the two side portions easily transforms into ordered structures by field annealing. Exchange coupling magnetic fields are thus generated between the second antiferromagnetic layer and the free magnetic layer in the two side portions so as to firmly pin the magnetization directions at the two side portions of the free magnetic layer in the track width direction.
P-0041[0041] Preferably, the thickness of the second antiferromagnetic layer is in the range of 5 to 50 Å, more preferably in the range of 10 to 50 Å, and most preferably in the range of 30 to 40 Å. At such a thickness, the exchange coupling magnetic field between the second antiferromagnetic layer and the free magnetic layer at the center portion is small, if any.
P-0042[0042] A second aspect of the present invention provides a magnetic sensing element comprising a composite film having a center portion and two side portions, second antiferromagnetic layers, chromium nonmagnetic layers, and third antiferromagnetic layers. The composite film comprises a first antiferromagnetic layer; a pinned magnetic layer on the first antiferromagnetic layer; a nonmagnetic material layer on the pinned magnetic layer; and a free magnetic layer on the nonmagnetic material layer. The second antiferromagnetic layers are disposed on the free magnetic layer at the two side portions. The chromium nonmagnetic layers are disposed on the second antiferromagnetic layers. The third antiferromagnetic layers disposed on the chromium nonmagnetic layers.
P-0043[0043] The magnetic sensing element according to the second aspect of the present invention differs from that according to the first aspect of the present invention in that the chromium nonmagnetic layer is always provided between the second antiferromagnetic layer and the third antiferromagnetic layer. No second antiferromagnetic layer needs to be provided at the center portion. Such differences are derived from the difference in fabrication processes.
P-0044[0044] According to the second aspect of the present invention, the second antiferromagnetic layer and the third antiferromagnetic layer are stacked on the free magnetic layer at each of the two side portions. The second and third antiferromagnetic layers function as one antiferromagnetic layer. The magnetization directions of the free magnetic layer at the two side portions are firmly pinned in the track width direction by the exchange coupling magnetic fields between the free magnetic layer and the second antiferromagnetic layer at the two side portions. The center portion of the free magnetic layer is only moderately put in a single-magnetic-domain state so that the magnetization direction thereof can rotate in response to external magnetic fields.
P-0045[0045] Since the two side portions of the free magnetic layer are covered with the second antiferromagnetic layer, they are not affected by milling.
P-0046[0046] Alternatively, the second antiferromagnetic layers may extend to the center portion so as to be connected to each other. In this manner, the entire upper face of the free magnetic layer can be protected by the second antiferromagnetic layers during ion milling.
P-0047[0047] Moreover, the chromium nonmagnetic layers may also extend to the center portion to be connected to each other.
P-0048[0048] Preferably, the second antiferromagnetic layers are nonantiferromagnetic in the center portion and antiferromagnetic in the two side portions. According to this structure, no exchange coupling magnetic field is generated between the second antiferromagnetic layer and the free magnetic layer at the center portion, and the magnetization direction of the center portion of the free magnetic layer remains rotatable. Since the second antiferromagnetic layer and the third antiferromagnetic layers function as one layer, the second antiferromagnetic layer at the two side portions easily transforms into ordered structures by field annealing. Exchange coupling magnetic fields are thus generated between the second antiferromagnetic layer and the free magnetic layer in the two side portions so as to firmly pin the magnetization directions at the two side portions of the free magnetic layer in the track width direction.
P-0049[0049] Alternatively, the third antiferromagnetic layers may extend to the center portion so as to be connected to each other; the thickness of the third antiferromagnetic layers may be smaller in the center portion than in the side portions; and the third antiferromagnetic layers may be nonantiferromagnetic in the center portion.
P-0050[0050] Preferably, the thickness of the second antiferromagnetic layers is 50 Å or less in the center portion. At such a thickness, the exchange coupling magnetic field between the antiferromagnetic layers and the free magnetic layer at the center portion is small, if any. Preferably, no antiferromagnetic layer is formed on the free magnetic layer in the center portion.
P-0051[0051] More preferably, the thickness of the antiferromagnetic layers formed on the center portion of the free magnetic layer is 40 Å or less.
P-0052[0052] Preferably, the thickness of the chromium nonmagnetic layers is in the range of 0.2 to 3 Å in the two side portions. More preferably, the thickness of the chromium nonmagnetic layers is in the range of 0.2 to 1.0 Å in the two side portions.
P-0053[0053] At a such thickness, an antiferromagnetic interaction occurs between the second antiferromagnetic layers and the third antiferromagnetic layers, and the second and third antiferromagnetic layers function as one antiferromagnetic layer that properly pins the magnetization directions of the two side portions of the free magnetic layer in the track width direction.
P-0054[0054] The magnetic sensing element of the present invention preferably further comprises a noble metal layer disposed between each nonmagnetic layer and the corresponding second antiferromagnetic layer.
P-0055[0055] When the chromium nonmagnetic layer is deposited directly on the second antiferromagnetic layer, transformation into ordered structures occurs even though the thickness of the second antiferromagnetic layer is small. As a result, the exchange coupling magnetic field between the second antiferromagnetic layer and the free magnetic layer <b>28</b> readily increases, and the amount of change in magnetization direction in response to external magnetic fields readily decreases. By providing the noble metal layer between the chromium nonmagnetic layer and the second antiferromagnetic layer, the tendency of the second antiferromagnetic layer to transform into ordered structures can be adequately controlled. Thus, a decrease in the rate of change in resistance can be avoided.
P-0056[0056] The noble metal layer preferably contains at least one element selected from the group consisting of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0057[0057] Preferably, the free magnetic layer comprises three magnetic sublayers. In particular, the three magnetic sublayers preferably comprise CoFe, NiFe, and CoFe, respectively.
P-0058[0058] The magnetic sensing element of the present invention may further include electrode layers on the third antiferromagnetic layers so that an electric current flows in a direction parallel to the surface of each layer of the composite film. This type of magnetic sensing element is called “current-in-the-plane (CIP) magnetic sensing element”.
P-0059[0059] Alternatively, the magnetic sensing element of the present invention may include an upper electrode layer disposed over the center portion of the composite and the third antiferromagnetic layers; and a lower electrode layers disposed at the bottom of the composite film, wherein an electric current flows in a direction perpendicular to the surface of each layer of the composite film. This type of magnetic sensing element is called “current-perpendicular-to-the-plane (CPP) magnetic sensing element”.
P-0060[0060] Preferably, the nonmagnetic material layer is made of a nonmagnetic conductive material. In such a case, the resulting magnetic sensing element is a spin-valve giant magnetoresistive (GMR) element of either a CIP type or a CPP type.
P-0061[0061] Alternatively, the nonmagnetic material layer may be made of an insulating material. In such a case, the resulting magnetic sensing element is a spin-valve tunneling magnetoresistive element (CPP-TMR).
P-0062[0062] In the present invention, the second antiferromagnetic layer is preferably made of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr.
P-0063[0063] These alloys immediately after deposition have a disordered face-centered cubic (fcc) structure and transform into an ordered face-centered tetragonal (fct) structure of a CuAuI type by annealing. As a result, a large exchange coupling magnetic field can be generate at the interface with the ferromagnetic layer.
P-0064[0064] The chromium nonmagnetic layer of the present invention promotes the transformation of these alloys into ordered structures.
P-0065[0065] When a laminate including the free magnetic layer, the second antiferromagnetic layer composed of one of these alloys, and the third antiferromagnetic layer is annealed, the PtMn alloy, the X—Mn alloy, or the Pt—Mn—X′ alloy transforms into an ordered structure. However, the region around the interface between the antiferromagnetic layer and the free magnetic layer rarely undergoes the transformation into ordered structures. When the chromium nonmagnetic layer is provided on the second antiferromagnetic layer, the transformation into ordered structure around interface is promoted, thereby increasing the magnitude of the exchange coupling magnetic field at the interface.
P-0066[0066] In the present invention, the crystal structure of the second antiferromagnetic layer is, for example, of a CuAuI type. Chromium atoms diffusing from the nonmagnetic layer partly replace the lattice points of the crystal lattice constituted from atoms of Pt and Mn, the crystal lattice constituted from atoms of X and Mn, or the crystal lattice constituted from atoms of Pt, Mn, and X′.
P-0067[0067] The present invention also provides a method for fabricating the magnetic sensing element. The method comprises (a) depositing a first antiferromagnetic layer, a pinned magnetic layer, a nonmagnetic material layer, a free magnetic layer, a second antiferromagnetic layer, and a chromium nonmagnetic layer on a substrate so as to form a composite on the substrate; (b) field-annealing the composite to generate an exchange coupling magnetic field between the first antiferromagnetic layer and the pinned magnetic layer so as to pin the magnetization direction of the pinned magnetic layer in the height direction; (c) forming a resist layer on the center of the chromium nonmagnetic layer, and partially milling the two side portions of the chromium nonmagnetic layer not covered by the resist; (d) forming a third antiferromagnetic layer on each of the two side portions of the chromium nonmagnetic layer and removing the resist layer; and (e) field-annealing the composite and the third antiferromagnetic layers to generate exchange coupling magnetic fields between the second antiferromagnetic layer and the free magnetic layer at the two side portions so as to pin the magnetization directions of the two side portions of the free magnetic layer in a direction orthogonal to the magnetization direction of the pinned magnetic layer.
P-0068[0068] In step (a) above, the layers from the first antiferromagnetic layer to the chromium nonmagnetic layer are sequentially deposited on the substrate. In step (c) above, the two side portions of the chromium nonmagnetic layer are only partially milled. By leaving part of the chromium nonmagnetic layer on each of the two side portions of the chromium nonmagnetic layer, the second antiferromagnetic layer can be protected from damage inflicted by ion milling. Moreover, because the thickness of the chromium nonmagnetic layer is small at the two side portions, the third antiferromagnetic layer and the second antiferromagnetic layer can function as one antiferromagnetic layer. As a result, the magnetization direction in the two side portions of the free magnetic layer can be properly pinned in the track width direction by the exchange coupling magnetic field between the free magnetic layer and the second antiferromagnetic layer at the two side portions. The center portion of the free magnetic layer is not as firmly magnetized as in the side portions, and the magnetization direction thereof can rotate in response to external magnetic fields.
P-0069[0069] According to this method, the free magnetic layer is not affected by ion milling. Thus, the magnetization directions of the two side portions of the free magnetic layer can be firmly pinned while the magnetization direction of the center portion is rotatable in response to external magnetic fields. Thus, the magnetization direction of the free magnetic layer can be properly controlled.
P-0070[0070] Because the chromium nonmagnetic layer is provided, the exchange coupling magnetic field (Hex) between the second antiferromagnetic layer and the free magnetic layer is larger than when a nonmagnetic layer of other material is provided. Thus, the magnetization directions of the two side portions of the free magnetic layer can be firmly pined by the two side portions of the second antiferromagnetic layer, and side reading can be reduced.
P-0071[0071] According to this method, a magnetic sensing element with few errors due to side reading having high sensitivity and superior read characteristics even with narrower tracks can be fabricated.
P-0072[0072] Preferably, in step (c) above, the thickness of the two side portions of the chromium nonmagnetic layer is in the range of 0.2 to 3 Å (average thickness), and more preferably 0.2 to 1.0 Å.
P-0073[0073] At such a thickness, an antiferromagnetic interaction can be produced between the third antiferromagnetic layers and the second antiferromagnetic layer made in step (d). As a result, the third and second antiferromagnetic layers can function as one antiferromagnetic layer, and the magnetization directions of the two side portions of the free magnetic layer can be properly pinned in the track width direction. Moreover, the second antiferromagnetic layer is not significantly damaged by ion milling.
P-0074[0074] In step (c) above, the two side portions of the chromium nonmagnetic layer not covered by the resist layer may be completely removed to expose the two side portions of the second antiferromagnetic layer, and the third antiferromagnetic layers may be formed on the exposed portions of the second antiferromagnetic layer in step (d).
P-0075[0075] In step (a) above, the thickness of the second antiferromagnetic layer is preferably in the range of 5 to 50 Å, more preferably 10 to 50 Å, and most preferably 30 to 40 Å.
P-0076[0076] In the present invention, the thickness of the second antiferromagnetic layer must not be large. If the second antiferromagnetic layer is thick, it easily transforms into an ordered structure by field annealing, and a large exchange coupling magnetic field is generated between the free magnetic layer and the second antiferromagnetic layer at the center portions.
P-0077[0077] Accordingly, the thickness of the second antiferromagnetic layer is adjusted as above to prevent generation of a large exchange coupling magnetic field between the center portions of the free magnetic layer and the second antiferromagnetic layer.
P-0078[0078] In step (a) above, the thickness of the chromium nonmagnetic layer is preferably in the range of 2 to 10 Å, and more preferably 2 to 5 Å. At such a thickness, the thickness of the chromium nonmagnetic layer can be easily adjusted by employing low-energy ion milling in step (c). As a result, the second antiferromagnetic layer does not suffer from damage inflicted by the ion milling.
P-0079[0079] The present invention also provides another method for fabricating the magnetic sensing element. The method comprises (f) depositing a first antiferromagnetic layer, a pinned magnetic layer, a nonmagnetic material layer, a free magnetic layer, a second antiferromagnetic layer, and a chromium nonmagnetic layer on a substrate so as to form a composite on the substrate; (g) field-annealing the composite to generate an exchange coupling magnetic field between the first antiferromagnetic layer and the pinned magnetic layer so as to pin the magnetization direction of the pinned magnetic layer in the height direction; (h) partly milling the surface of the chromium nonmagnetic layer; (i) forming a third antiferromagnetic layer on the chromium nonmagnetic layer; (j) forming a mask layer on the two side portions of the third antiferromagnetic layer and milling the center portion of the third antiferromagnetic layer not covered by the mask layer; and (k) field-annealing the composite and the third antiferromagnetic layer to generate exchange coupling magnetic fields between the second antiferromagnetic layer and the free magnetic layer at the two side portions so as to pin the magnetization directions of the two side portions of the free magnetic layer in a direction orthogonal to the magnetization direction of the pinned magnetic layer.
P-0080[0080] In step (f) above, the layers from the first antiferromagnetic and the chromium nonmagnetic layer are sequentially deposited on the substrate. In step (h), the chromium nonmagnetic layer is only partly milled. Thus, the underlying second antiferromagnetic can be protected from damage inflicted by ion milling. Moreover, since the thickness of the chromium nonmagnetic layer is small, the third antiferromagnetic layer and the second antiferromagnetic layer can function as one antiferromagnetic layer by an antiferromagnetic interaction therebetween.
P-0081[0081] In step (j) above, the thickness of the center portion of the third antiferromagnetic layer is reduced by milling. In this manner, the magnetization directions of the two side portions of the free magnetic layer can be properly pinned in the track width direction by exchange coupling magnetic fields with the second antiferromagnetic layer. The magnetization direction in the center portion of the free magnetic layer is rotatable in response to external magnetic fields.
P-0082[0082] According to the above method, the free magnetic layer is not affected by ion milling. Thus, a sufficient longitudinal bias magnetic field can be provided at two side portions of the free magnetic layer, and the magnetization of the free magnetic layer can be properly controlled.
P-0083[0083] According to this method, a magnetic sensing element having high sensitivity and superior read characteristics even with narrower tracks can be fabricated.
P-0084[0084] Preferably, in step (f) above, the thickness of the chromium nonmagnetic layer is in the range of 5 to 50 Å, more preferably 10 to 50 Å, and most preferably 30 to 40 Å. At such a thickness, the center portion of the second antiferromagnetic layer rarely transforms into an ordered structure by field annealing, and no exchange coupling magnetic field is generated between the center portion of the second antiferromagnetic layer and the center portion of the free magnetic layer. Thus, the center portion of the free magnetic layer can be moderately put to a single-magnetic-domain state so that the magnetization direction thereof can rotate in response to external magnetic fields.
P-0085[0085] In step (f) above, the thickness of the chromium nonmagnetic layer is preferably 2 to 10 Å, and more preferably 2 to 5 Å. In this manner, the thickness of the chromium nonmagnetic layer can be easily adjusted by employing low-energy ion milling in step (h). As a result, the second antiferromagnetic layer does not suffer from damage inflicted by the ion milling.
P-0086[0086] In step (h), the chromium nonmagnetic layer is preferably milled to a thickness of 0.2 to 3.0 Å, and more preferably 0.2 to 1.0 Å (average thickness). At such a thickness, an antiferromagnetic interaction can be generated between the two side portions of the third antiferromagnetic layer and the second antiferromagnetic layer, and the second and third antiferromagnetic layers can function as one antiferromagnetic layer. As a result, the magnetization directions at the two side portions of the free magnetic layer can be pinned in the track width direction.
P-0087[0087] In step (j) above, part of the third antiferromagnetic not covered by the mask layer may be completely removed so as to expose the chromium nonmagnetic layer.
P-0088[0088] In step (j) above, part of the third antiferromagnetic layer not covered by the mask layer may be completely removed so as to expose the chromium nonmagnetic layer, and the exposed portion of the chromium nonmagnetic layer may also be completely removed to expose the second antiferromagnetic layer.
P-0089[0089] Moreover, step (k) of field annealing may be performed between the steps (i) and (j).
P-0090[0090] Preferably, in steps (a) and (f), a noble metal layer is provided between the second antiferromagnetic layer and the chromium nonmagnetic layer.
P-0091[0091] When the chromium nonmagnetic layer is disposed on the second antiferromagnetic layer, the second antiferromagnetic layer readily transforms to an ordered structure even when the second antiferromagnetic layer has a small thickness. This generates a large exchange coupling magnetic field between the center portions of the free magnetic layer and the antiferromagnetic layer and reduces the amount of change in magnetization direction in response to external magnetic fields. By providing the noble metal layer between the chromium nonmagnetic layer and the second antiferromagnetic layer, the transformation of the second antiferromagnetic layer into an ordered structure can be properly controlled, and a decrease in the rate of change in magnetic resistance can be prevented.
P-0092[0092] The noble metal layer preferably contain at least one element selected from the group consisting of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0093[0093] Preferably, in steps (a) and (f) above, the free magnetic layer is constituted from three magnetic sublayers. The three magnetic sublayers are preferably made of CoFe, NiFe, and CoFe, respectively.
BRIEF DESCRIPTION OF THE DRAWINGS
P-0094[0094]FIG. 1 is a partial cross-sectional view of a magnetic sensing element according to a first embodiment of the present invention viewed from the face opposing a recording medium; and
P-0095[0095]FIG. 2 is a partial cross-sectional view of a magnetic sensing element according to a second embodiment of the present invention viewed from the face opposing a recording medium;
P-0096[0096]FIG. 3 is a partial cross-sectional view of a magnetic sensing element according to a third embodiment of the present invention viewed from the face opposing a recording medium;
P-0097[0097]FIG. 4 is a partial cross-sectional view of a magnetic sensing element according to a fourth embodiment of the present invention viewed from the face opposing a recording medium;
P-0098[0098]FIG. 5 is a partial cross-sectional view of a magnetic sensing element according to a fifth embodiment of the present invention viewed from the face opposing a recording medium;
P-0099[0099]FIG. 6 is a partial cross-sectional view of a magnetic sensing element according to a sixth embodiment of the present invention viewed from the face opposing a recording medium;
P-0100[0100]FIG. 7 is a partial cross-sectional view of a magnetic sensing element according to a seventh embodiment of the present invention viewed from the face opposing a recording medium;
P-0101[0101]FIG. 8 is a partial cross-sectional view of a magnetic sensing element according to an eighth embodiment of the present invention viewed from the face opposing a recording medium;
P-0102[0102]FIG. 9 is a partial cross-sectional view of a magnetic sensing element according to a ninth embodiment of the present invention viewed from the face opposing a recording medium;
P-0103[0103]FIG. 10 is a partial cross-sectional view of a magnetic sensing element according to a tenth embodiment of the present invention viewed from the face opposing a recording medium;
P-0104[0104]FIG. 11 is a partial cross-sectional view of a magnetic sensing element according to an eleventh embodiment of the present invention viewed from the face opposing a recording medium;
P-0105[0105]FIG. 12 is a partial cross-sectional view of a magnetic sensing element according to a twelfth embodiment of the present invention viewed from the face opposing a recording medium;
P-0106[0106]FIG. 13 is a partial cross-sectional view of a magnetic sensing element according to a thirteenth embodiment of the present invention viewed from the face opposing a recording medium;
P-0107[0107]FIG. 14 is a partial cross-sectional view of a magnetic sensing element according to a fourteenth embodiment of the present invention viewed from the face opposing a recording medium;
P-0108[0108]FIG. 15 is a partial enlarged cross-sectional view of an example of the free magnetic layer viewed from the face opposing a recording medium;
P-0109[0109]FIG. 16 is a partial enlarged cross-sectional view of another example of the free magnetic layer viewed from the face opposing a recording medium;
P-0110[0110]FIG. 17 is a partial enlarged cross-sectional view of yet another example of the free magnetic layer viewed from the face opposing a recording medium;
P-0111[0111]FIG. 18 is a partial enlarged cross-sectional view of still another example of the free magnetic layer viewed from the face opposing a recording medium;
P-0112[0112]FIG. 19 is a partial cross-sectional view of a magnetic sensing element according to a fifteenth embodiment of the present invention viewed from the face opposing a recording medium;
P-0113[0113]FIG. 20 is a partial cross-sectional view of a magnetic sensing element according to a sixteenth embodiment of the present invention viewed from the face opposing a recording medium;
P-0114[0114]FIG. 21 is a cross-sectional view showing a step of fabricating the magnetic sensing element shown in FIG. 1;
P-0115[0115]FIG. 22 is a cross-sectional view showing a step subsequent to the step shown in FIG. 21;
P-0116[0116]FIG. 23 is a cross-sectional view showing a step subsequent to the step shown in FIG. 22;
P-0117[0117]FIG. 24 is a cross-sectional view showing a step of fabricating the magnetic sensing element shown in FIG. 7;
P-0118[0118]FIG. 25 is a cross-sectional view showing a step of fabricating the magnetic sensing element shown in FIG. 4;
P-0119[0119]FIG. 26 is a cross-sectional view showing a step subsequent to the step shown in FIG. 25;
P-0120[0120]FIG. 27 is a cross-sectional view showing a step subsequent to the step shown in FIG. 26;
P-0121[0121]FIG. 28 is a cross-sectional view showing a step of fabricating electrode layers;
P-0122[0122]FIG. 29 is a cross-sectional view showing a step of fabricating the magnetic sensing element shown in FIG. 10;
P-0123[0123]FIG. 30 is a cross-sectional view showing a step subsequent to the step shown in FIG. 29;
P-0124[0124]FIG. 31 is a cross-sectional view showing a step subsequent to the step shown in FIG. 30;
P-0125[0125]FIG. 32 is a graph showing the exchange coupling magnetic field of an annealed exchange-coupled film including a Cr layer of various thickness in an antiferromagnetic layer;
P-0126[0126]FIG. 33 is a graph showing the exchange coupling energy Jk of an annealed exchange-coupled film having a Cr layer 0.2 Å in thickness inserted at various positions in an antiferromagnetic layer;
P-0127[0127]FIG. 34 is a graph plotted by converting the abscissa axis of the graph in FIG. 33 in terms of the exchange coupling magnetic field (Hex) between the ferromagnetic layer and the antiferromagnetic layer;
P-0128[0128]FIG. 35 is a graph showing the unidirectional exchange magnetic field (Hex*) of an annealed exchange-coupled film having a Cr layer 0.2 Å in thickness inserted at various positions in an antiferromagnetic layer;
P-0129[0129]FIG. 36 is a partial cross-sectional view of a conventional magnetic sensing element viewed from the face of the magnetic sensing element that opposes a recording medium;
P-0130[0130]FIG. 37 is a cross-sectional view of a step of fabricating another conventional magnetic sensing element; and
P-0131[0131]FIG. 38 is a cross-sectional view showing a step subsequent to the step shown in FIG. 37.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
P-0132[0132] First Embodiment
P-0133[0133]FIG. 1 is a partial cross-sectional view of a magnetic sensing element (spin-valve thin film element) according to a first embodiment of the present invention viewed from the face of the magnetic sensing element opposing a recording medium. Hereinafter, this face is referred to as the “opposing face”.
P-0134[0134] Referring to FIG. 1, a seed layer <b>21</b> composed of a NiFe alloy, a NiFeCr alloy, elemental Cr, or the like is formed on a substrate <b>20</b>. For example, the seed layer <b>21</b> is composed of (Ni<sub>0.8</sub>Fe<sub>0.2</sub>)<sub>60 at %</sub>Cr<sub>40 at % </sub>and has a thickness of 60 Å.
P-0135[0135] A first antiferromagnetic layer <b>22</b> is formed on the seed layer <b>21</b>. The first antiferromagnetic layer <b>22</b> is composed of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr.
P-0136[0136] When the first antiferromagnetic layer <b>22</b> composed of any one of these alloys is annealed, an exchange coupling film that generates a large exchange coupling magnetic field consisting of the first antiferromagnetic layer <b>22</b> and a pinned magnetic layer <b>23</b> described below can be obtained. In particular, when the first antiferromagnetic layer <b>22</b> is composed of a PtMn alloy, the resulting exchange coupled film exhibits an exchange coupling magnetic field of at least 48 kA/m, for example, more than 64 kA/m, and has a blocking temperature of 380° C. The blocking temperature is the temperature at which the generated exchange coupling magnetic field vanishes.
P-0137[0137] These alloys immediately after deposition have a disordered face-centered cubic (fcc) structure and transform into an ordered face-centered tetragonal (fct) structure of a CuAuI type by annealing.
P-0138[0138] The thickness of the first antiferromagnetic layer <b>22</b> around the center in the track width direction is 80 to 300 Å.
P-0139[0139] A pinned magnetic layer <b>23</b> is formed on the first antiferromagnetic layer <b>22</b>. The pinned magnetic layer <b>23</b> has a synthetic ferrimagnetic structure comprising three layers, namely, a magnetic sublayer <b>24</b>, a nonmagnetic interlayer <b>25</b>, and a magnetic sublayer <b>26</b>.
P-0140[0140] The magnetic sublayers <b>24</b> and <b>26</b> are composed of a magnetic material, for example, a NiFe alloy, elemental Co, a CoNiFe alloy, a CoFe alloy, or a CoNi alloy. The magnetic sublayers <b>24</b> and <b>26</b> are preferably composed of the same material.
P-0141[0141] The nonmagnetic interlayer <b>25</b> is composed of a nonmagnetic material containing at least one of Ru, Rh, Ir, Cr, Re, and Cu. Preferably, the nonmagnetic interlayer <b>25</b> is composed of Ru.
P-0142[0142] A nonmagnetic material layer <b>27</b> is formed on the pinned magnetic layer <b>23</b>. The nonmagnetic material layer <b>27</b> prevents the pinned magnetic layer <b>23</b> and a free magnetic layer <b>28</b> described later from being magnetically coupled to each other. Since sensing current mainly flows in the nonmagnetic material layer <b>27</b>, the nonmagnetic material layer <b>27</b> is preferably composed of a conductive nonmagnetic material such as Cu, Cr, Au, or Ag. Preferably, the nonmagnetic material layer <b>27</b> is composed of Cu.
P-0143[0143] A free magnetic layer <b>28</b> is formed on the nonmagnetic material layer <b>27</b>. In the embodiment shown in FIG. 1, the free magnetic layer <b>28</b> has a two-layer structure comprising an anti-diffusion sublayer <b>29</b> and a magnetic material sublayer <b>30</b>. The anti-diffusion sublayer <b>29</b> is composed of Co, CoFe, or the like and prevents interdiffusion between the free magnetic layer <b>28</b> and the nonmagnetic material layer <b>27</b>. The magnetic material sublayer <b>30</b> is disposed on the anti-diffusion sublayer <b>29</b> and is composed of a NiFe alloy, for example.
P-0144[0144] A second antiferromagnetic layer <b>31</b> is disposed on the free magnetic layer <b>28</b>. As with the first antiferromagnetic layer <b>22</b>, the second antiferromagnetic layer <b>31</b> is composed of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr.
P-0145[0145] In the embodiment shown in FIG. 1, a nonmagnetic layer <b>32</b> is disposed on the second antiferromagnetic layer <b>31</b>. A third antiferromagnetic layer <b>33</b> is disposed on each of the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b>. As with the first antiferromagnetic layer <b>22</b>, the third antiferromagnetic layers <b>33</b> are composed of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr. Preferably, the third antiferromagnetic layer <b>33</b> and the second antiferromagnetic layer <b>31</b> are composed of the same material.
P-0146[0146] An electrode layer <b>34</b> is disposed on each of the third antiferromagnetic layers <b>33</b>. The electrode layers <b>34</b> are composed of, for example, Au, W, Cr, Ru, or Ta.
P-0147[0147] In this embodiment, the gap between the third antiferromagnetic layers <b>33</b> and the gap between the electrode layers <b>34</b> widens along the Z direction in the drawing, as shown in FIG. 1. Accordingly, ends <b>33</b><i>a </i>of the third antiferromagnetic layers <b>33</b> and ends <b>34</b><i>a </i>of the electrode layers <b>34</b> are formed as slopes having either flat surfaces or curved surfaces.
P-0148[0148] The features of the magnetic sensing element of this embodiment shown in FIG. 1 will now be described.
P-0149[0149] As shown in FIG. 1, the second antiferromagnetic layer <b>31</b> is disposed on the free magnetic layer <b>28</b>, and the third antiferromagnetic layers <b>33</b> is formed on each of two side portions C of the second antiferromagnetic layer <b>31</b>, with the nonmagnetic layer <b>32</b> therebetween. The two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> disposed between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> have a small thickness. Preferably, the two side portions <b>32</b><i>a </i>have a thickness in the range of 0.2 to 3 Å, and more preferably 0.2 to 1.0 Å.
P-0150[0150] The nonmagnetic layer <b>32</b> is composed of Cr. The average thickness can be calculated by X-ray fluorescence analysis.
P-0151[0151] The average thickness of the nonmagnetic layer <b>32</b> is sometimes less than 1 Å. As is widely known, no uniform thin film has a thickness of less than 1 Å since 1 Å corresponds to the diameter of one atom or less. However, in a nonuniform thin film containing unevenly distributed Cr atoms, there exist regions with chromium atoms and regions without any chromium atoms. Accordingly, the average thickness of the nonmagnetic layer <b>32</b> is sometimes less than 1 Å. At such a thickness, ferromagnetic interaction occurs between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> through the nonmagnetic layer <b>32</b>. As a result, the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> readily function as a single antiferromagnetic layer.
P-0152[0152] In view of the above, the embodiment shown in FIG. 1 has a structure similar to a magnetic sensing element comprising a ferromagnetic layer with a large thickness disposed on each of the two side portions C of the free magnetic layer <b>28</b>. The magnetization directions of the two side portions C of the free magnetic layer <b>28</b> are properly pinned in the track width direction (the X direction in the drawing) by an exchange coupling magnetic field with the two side portions C of the second antiferromagnetic layer <b>31</b>.
P-0153[0153] In the embodiment shown in FIG. 1, the second antiferromagnetic layer <b>31</b> also covers a center portion D of the free magnetic layer <b>28</b>. However, the third antiferromagnetic layers <b>33</b> are not disposed over the center portion D.
P-0154[0154] In this embodiment, the thickness h1 of the second antiferromagnetic layer <b>31</b> is controlled during deposition so that the center portion D of the second antiferromagnetic layer <b>31</b> does not exhibit antiferromagnetic properties and become nonantiferromagnetic or nonmagnetic instead.
P-0155[0155] The thickness hi of the second antiferromagnetic layer <b>31</b> is preferably in the range of 5 to 50 Å, more preferably 10 to 50 Å, and most preferably 30 to 40 Å.
P-0156[0156] Since the nonmagnetic layer <b>32</b> disposed on the second antiferromagnetic layer <b>31</b> functions as a protective layer, the antiferromagnetic characteristics at the two side portions of the second antiferromagnetic layer <b>31</b> during or after manufacture are prevented from being degraded. Accordingly, in this embodiment, the thickness hi of the second antiferromagnetic layer <b>31</b> may be 5 to 50 Å, for example, approximately 10 Å.
P-0157[0157] At such a small thickness, the center portion D of the second antiferromagnetic layer <b>31</b> rarely transforms into an ordered structure even after field annealing. The exchange coupling magnetic field between the center portion D of the second antiferromagnetic layer <b>31</b> and the center portion D of the free magnetic layer <b>28</b> is small, if any.
P-0158[0158] The thickness of the second antiferromagnetic layer <b>31</b> is at least 5 Å because, at a smaller thickness, the exchange coupling magnetic fields between the two side portions C of the second antiferromagnetic layer <b>31</b> and the two side portions C of the free magnetic layer <b>28</b> become weak. As a result, the magnetization directions of the two side portions C of the free magnetic layer <b>28</b> may not be sufficiently pinned in the track width direction.
P-0159[0159] Although the third antiferromagnetic layers <b>33</b> and the two side portions C of the second antiferromagnetic layer <b>31</b> function as a single antiferromagnetic layer due to the antiferromagnetic interaction via the nonmagnetic layer <b>32</b>, the third antiferromagnetic layer <b>33</b> and the second antiferromagnetic layer <b>31</b> are not physically a single layer. If the thickness of the second antiferromagnetic layer <b>31</b> is small, the second antiferromagnetic layer <b>31</b> only moderately transforms into an ordered structure. Thus, the exchange coupling magnetic field between the two side portions C of the second antiferromagnetic layer <b>31</b> and the two side portions C of the free magnetic layer <b>28</b> becomes weak. In view of the above, the thickness of the second antiferromagnetic layer <b>31</b> is set to at least 5 Å.
P-0160[0160] Moreover, shunt loss at the center portion D can be decreased and the read output can be increased by adjusting the thickness of the second antiferromagnetic layer <b>31</b> in the range of 5 to 50 Å.
P-0161[0161] The total of the thickness of the second antiferromagnetic layer <b>31</b> at the side portion C and the thickness of the third antiferromagnetic layer <b>33</b> is preferably in the range of 80 to 300 Å. In this manner, the two side portions C of the second antiferromagnetic layer <b>31</b> can properly exhibit antiferromagnetic characteristics and can be transformed in to an ordered structure by field annealing. As a result, exchange coupling magnetic fields are generated between the two side portions C of the second antiferromagnetic layer <b>31</b> and the two side portions C of the free magnetic layer <b>28</b>, and the magnetization directions of the two side portions C of the free magnetic layer <b>28</b> can be pinned in the track width direction.
P-0162[0162] The nonmagnetic layer <b>32</b> will now be explained. The nonmagnetic layer <b>32</b> functions as a protective layer for preventing the second antiferromagnetic layer <b>31</b> from being oxidized in air in a manufacturing method, as described below.
P-0163[0163] The nonmagnetic layer <b>32</b> is preferably composed of a material less easily oxidizable than Ta. Preferably, the nonmagnetic layer <b>32</b> is constituted from an element that does not affect the antiferromagnetic properties of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. This is because the element may diffuse into the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> during deposition or during field annealing for controlling the magnetization direction of the pinned magnetic layer <b>23</b> or free magnetic layer <b>28</b>.
P-0164[0164] In this embodiment, the nonmagnetic layer <b>32</b> is composed of Cr. Chromium is rarely oxidized in the thickness direction by exposure to air. Thus, the thickness of the nonmagnetic layer <b>32</b> is likely to be prevented from increasing due to oxidation resulting from exposure to air.
P-0165[0165] Moreover, when the nonmagnetic layer <b>32</b> is composed of Cr, the exchange coupling magnetic fields (Hex) between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at side portions can become larger than that with the nonmagnetic layer <b>32</b> composed of at least one of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0166[0166] When the second antiferromagnetic layer <b>31</b> composed of a PtMn alloy, the X—Mn alloy, or the Pt—Mn—X′ alloy is annealed along with the free magnetic layer <b>28</b> underneath and the third antiferromagnetic layers <b>33</b> on top, the PtMn alloy, the X—Mn alloy, or the Pt—Mn—X′ alloy transforms into an ordered structure. However, part around the interface between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> does not easily transform into the ordered structure. When a nonmagnetic layer <b>32</b> composed of Cr is provided at the interface, the transformation into the ordered structure around the interface can progress nearly completely, thereby increasing the magnitudes of the exchange coupling magnetic fields generated at the interface.
P-0167[0167] When the nonmagnetic layer <b>32</b> composed of Cr is provided, chromium atoms of the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b>. The diffused atoms promote transformation of the PtMn alloy, the X—Mn alloy, or the Pt—Mn—X′ alloy into ordered structures.
P-0168[0168] In this embodiment, because the nonmagnetic layer <b>32</b>, functioning as the protective layer, is disposed on the second antiferromagnetic layer <b>31</b>, the thickness hi of the second antiferromagnetic layer <b>31</b> can be reduced to a thickness in the range of 5 to 50 Å, for example, approximately 10 Å. When Cr atoms of the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b> having such a small thickness, the transformation into ordered structures can be efficiently promoted around the interface between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b>, and the exchange coupling magnetic field generated at the interface can be increased.
P-0169[0169] Accordingly, in the magnetic sensing element of this embodiment, the magnetization of the two side portions C of the free magnetic layer <b>28</b> can be firmly pinned with the two side portions C of the second antiferromagnetic layer <b>31</b>. Thus, side reading can be reduced.
P-0170[0170] The crystal structure of the second antiferromagnetic layer <b>31</b> is, for example, of a CuAuI type. Chromium atoms diffusing from the nonmagnetic layer <b>32</b> partly replace the lattice points of the crystal lattice constituted from atoms of Pt and Mn, the crystal lattice constituted from atoms of X and Mn, or the crystal lattice constituted from atoms of Pt, Mn, and X′.
P-0171[0171] Whether chromium atoms of the nonmagnetic layer <b>32</b> are diffused into the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> can be examined by secondary ion mass spectrometry (SIMS) analysis, for example. When the second antiferromagnetic layer <b>31</b> is formed using a PtMn alloy and the nonmagnetic layer <b>32</b> is formed using Cr, a diffusion layer composed of a Cr—Pt—Mn alloy is formed by field annealing.
P-0172[0172] The thickness of the nonmagnetic layer <b>32</b> will now be explained. The nonmagnetic layer <b>32</b> is deposited to a thickness of 2 to 10 Å and preferably 2 to 5 Å. The nonmagnetic layer <b>32</b> composed of Cr is a dense layer that prevents oxidation in the thickness direction when exposed to air. Thus, the nonmagnetic layer <b>32</b> can adequately prevent the second antiferromagnetic layer <b>31</b> from being oxidized by exposure to air even at a small thickness.
P-0173[0173] The thickness of a center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b> remains the same as initially deposited. This is because the center portion <b>32</b><i>b </i>is not affected by ion milling, as will be described in later sections in the description of the fabrication process.
P-0174[0174] The two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> are milled by ion milling. The thickness of the two side portions <b>32</b><i>a </i>is smaller than the center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b>. The reason for making the thickness of the center portion <b>32</b><i>b </i>larger than that of the two side portions <b>32</b><i>a </i>is to properly produce an antiferromagnetic interaction between the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> so that the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> can function as a single antiferromagnetic layer. Note that the nonmagnetic layer <b>32</b> is provided between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. When the thickness of the nonmagnetic layer <b>32</b> is large, the concentration of Cr, which is a nonmagnetic substance, does not sufficiently decrease as a result of diffusion, and the nonmagnetic layer <b>32</b> remains thick after annealing. This eliminates the antiferromagnetic interaction between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. Since the second antiferromagnetic layer <b>31</b> alone is so thin that no exchange coupling magnetic field is generated between the second antiferromagnetic layer <b>31</b> alone and the free magnetic layer <b>28</b>, the magnetization of the two side portions C of the free magnetic layer <b>28</b> cannot be properly pinned.
P-0175[0175] As described above, the thickness of the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> is preferably 3 Å or less, and more preferably 1.0 Å or less. At such a small thickness, an antiferromagnetic interaction occurs between the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> and the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> can thus function as a single antiferromagnetic layer.
P-0176[0176] The two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> preferably have an average thickness of 0.2 Å or more. In this manner, the second antiferromagnetic layer <b>31</b> can remain unaffected by the ion milling and can thus exhibit sufficient magnetic characteristics.
P-0177[0177] As shown in FIG. 1, the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> can be milled to a small thickness of 3 Å or less because low-energy ion milling can be employed. The nonmagnetic layer <b>32</b> is formed as a thin layer, i.e., 2 to 10 Å, or more preferably, 2 to 5 Å, from the beginning. Thus, the thickness of the nonmagnetic layer <b>32</b> can be properly adjusted by employing low-energy ion milling. The milling rate is lower compared to that of high-energy ion milling, and it is relatively easy to stop milling before completely removing the nonmagnetic layer <b>32</b>.
P-0178[0178] Here, the term “low-energy ion milling” refers to ion milling employing ion beams having beam voltages (accelerating voltage) of less than 1,000 V. For example, beam voltages in the range of 100 to 500 V may be employed. In this embodiment, an Ar ion beam having a beam voltage of 200 V is used.
P-0179[0179] Preferably, a noble metal layer <b>90</b> is disposed between the nonmagnetic layer <b>32</b> and the second antiferromagnetic layer <b>31</b>, as indicated by a broken line in FIG. 1.
P-0180[0180] When the nonmagnetic layer <b>32</b> is deposited directly on the second antiferromagnetic layer <b>31</b>, transformation into an ordered structure occurs even though the thickness of the second antiferromagnetic layer <b>31</b> is small. As a result, the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the center portion of the free magnetic layer <b>28</b> readily increases, and the amount of change in the magnetization direction in response to external magnetic fields readily decreases. By providing the noble metal layer <b>90</b> between the nonmagnetic layer <b>32</b> and the second antiferromagnetic layer <b>31</b>, the tendency of the second antiferromagnetic layer <b>31</b> to transform into ordered structures can be adequately controlled. Accordingly, a decrease in the rate of change in magnetic resistance can be prevented.
P-0181[0181] The noble metal layer <b>90</b> is composed of at least one element selected from the group consisting of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0182[0182] In the embodiment shown in FIG. 1, the track width Tw is defined by the gap between the lower portions of the third antiferromagnetic layers <b>33</b> in the track width direction (the X direction in the drawing). The track width Tw is preferably 0.2 μm or less.
P-0183[0183] In the embodiment shown in FIG. 1, the magnetization directions of the two side portions C of the free magnetic layer <b>28</b> are properly pinned in the track width direction (the X direction). In contrast, the magnetization direction of the center portion D of the free magnetic layer <b>28</b> is only moderately put in a single-magnetic-domain state so that the magnetization direction can rotate in response to external magnetic fields. The length of the center portion D of the free magnetic layer <b>28</b> in the track width direction is approximately the same as the track width Tw. In this manner, the magnetization direction of part of the free magnetic layer <b>28</b> corresponding to the track width Tw can properly rotate in response to external magnetic fields.
P-0184[0184] In this embodiment, the second antiferromagnetic layer <b>31</b> is formed on the free magnetic layer <b>28</b>, and the nonmagnetic layer <b>32</b> is milled by ion milling. Thus, there is no danger of the free magnetic layer <b>28</b> being removed by ion milling, and magnetic characteristics of the free magnetic layer <b>28</b> are not degraded by damage inflicted by ion milling.
P-0185[0185] Moreover, since the second antiferromagnetic layer <b>31</b> is formed on the free magnetic layer <b>28</b> and the third antiferromagnetic layers <b>33</b> are formed on the two side portions C of the second antiferromagnetic layer <b>31</b> with the nonmagnetic layer <b>32</b> therebetween. According to this structure the magnetization of the free magnetic layer <b>28</b> can be properly controlled even with narrow tracks. Thus, a magnetic sensing element that meets the demand for narrower tracks can be obtained.
P-0186[0186] Second Embodiment
P-0187[0187]FIG. 2 is a partial cross-sectional view of a magnetic sensing element according to a second embodiment of the present invention.
P-0188[0188] The magnetic sensing element in FIG. 2 differs from the magnetic sensing element in FIG. 1 in that the nonmagnetic layer <b>32</b> is provided only in the gap between the third antiferromagnetic layers <b>33</b>, i.e., the gap corresponding to the track width Tw. No nonmagnetic layer <b>32</b> is provided between the third antiferromagnetic layers <b>33</b> and the two side portions C of the second antiferromagnetic layer <b>31</b>.
P-0189[0189] As in the first embodiment shown in FIG. 1, the second antiferromagnetic layer <b>31</b> of this embodiment shown in FIG. 2 has a thickness of 5 to 50 Å. The center portion D of the second antiferromagnetic layer <b>31</b> exhibits nonantiferromagnetic properties. The exchange coupling magnetic field between the center portion D of the second antiferromagnetic layer <b>31</b> and the center portion D of the free magnetic layer <b>28</b> is small if any. The magnetization direction of the center portion D of the free magnetic layer <b>28</b> is properly oriented in the track width direction (the X direction) and rotates in response to external magnetic fields.
P-0190[0190] The second antiferromagnetic layer <b>31</b> are disposed on the free magnetic layer <b>28</b>, and the third antiferromagnetic layer <b>33</b> is disposed directly on each of the two side portions C of the second antiferromagnetic layer <b>31</b>. The second antiferromagnetic layer <b>31</b> exhibits antiferromagnetic properties as a result of the antiferromagnetic interaction between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. When these layers are annealed in a magnetic field, the two side portions C of the second antiferromagnetic layer <b>31</b> transforms into an ordered structure, and exchange coupling magnetic fields are produced between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the two side portions C. As a result, the magnetization direction of the free magnetic layer <b>28</b> in the two side portions C is firmly pinned in the track width direction (the X direction in the drawing).
P-0191[0191] The nonmagnetic layer <b>32</b> in FIG. 2 is composed of Cr. When the nonmagnetic layer <b>32</b> is formed using Cr, oxidation rarely progresses in the layer thickness direction when exposed to air. The nonmagnetic layer <b>32</b> made of Cr can prevent the second antiferromagnetic layer <b>31</b> from being oxidized even when the nonmagnetic layer <b>32</b> has a small thickness. In this embodiment, the nonmagnetic layer <b>32</b> preferably has a thickness of 2 to 10 Å, and more preferably 2 to 5 Å immediately after the deposition.
P-0192[0192] As will be described in a manufacturing method below, the nonmagnetic layer <b>32</b> is initially formed over the entire surface of the second antiferromagnetic layer <b>31</b>, and two side portions of the nonmagnetic layer <b>32</b> is subsequently removed by ion milling to expose the second antiferromagnetic layer <b>31</b> at the two side portions C. The third antiferromagnetic layers <b>33</b> are then deposited on the second antiferromagnetic layer <b>31</b> at the two side portions C. Since the thickness of the nonmagnetic layer <b>32</b> is small, i.e., approximately 2 to 10 Å, the nonmagnetic layer <b>32</b> can be properly removed by low-energy ion milling. Controlling the milling process so as not to remove all of the second antiferromagnetic layer <b>31</b> is easier compared to when high-energy ion milling is employed. Thus, less damage is inflicted to the second antiferromagnetic layer <b>31</b> under the nonmagnetic layer <b>32</b>.
P-0193[0193] As described above, since the surface of the second antiferromagnetic layer <b>31</b> at the two side portions C suffers less from ion milling, the second antiferromagnetic layer <b>31</b> maintains superior magnetic characteristics.
P-0194[0194] In the magnetic sensing element shown in FIG. 2 also, Cr atoms of the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b>. Since the nonmagnetic layer <b>32</b>, functioning as a protective layer, is provided on the second antiferromagnetic layer <b>31</b>, the thickness h1 of the second antiferromagnetic layer <b>31</b> can be reduced to 5 to 50 Å, for example, to approximately 10 Å. Chromium atoms diffusing into the second antiferromagnetic layer <b>31</b> from the nonmagnetic layer <b>32</b> promote transformation into an ordered structure around the interface between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b>. This increases the magnitude of the exchange coupling magnetic field generated at the interface.
P-0195[0195] Accordingly, the magnetization directions of the free magnetic layer <b>28</b> at the two side portions C can be firmly pinned by the two side portions C of the second antiferromagnetic layer <b>31</b>. Side reading can be reduced.
P-0196[0196] The crystal structure of the second antiferromagnetic layer <b>31</b> is, for example, of a CuAuI type. Chromium atoms diffusing from the nonmagnetic layer <b>32</b> partly replace the lattice points of the crystal lattice constituted from atoms of Pt and Mn, the crystal lattice constituted from atoms of X and Mn, or the crystal lattice constituted from atoms of Pt, Mn, and X′.
P-0197[0197] In the embodiment shown in FIG. 2, the second antiferromagnetic layer <b>31</b> is disposed on the free magnetic layer <b>28</b>, and the nonmagnetic layer <b>32</b> is milled by ion milling. Unlike conventional techniques, ion milling does not affect the free magnetic layer <b>28</b>. The problem of magnetic characteristics degradation of the free magnetic layer <b>28</b> due to damage inflicted by ion milling does not occur.
P-0198[0198] According to the structure shown in FIG. 2, the magnetization directions of the free magnetic layer <b>28</b> can be properly controlled even with narrower tracks, and a magnetic sensing element that can meet the demand for narrower tracks can be obtained.
P-0199[0199] Note that the second antiferromagnetic layer <b>31</b> at the two side portions C may be partially milled, as shown by a broken line E in FIG. 2. In such a case, the thickness of the second antiferromagnetic layer <b>31</b> at the two side portions C becomes smaller than the thickness at the center portion D. However, since the second antiferromagnetic layer <b>31</b> at the two side portions C is removed by low-energy ion milling, the damage inflicted to the two side portions C is less compared to when high-energy ion milling is employed. The second antiferromagnetic layer <b>31</b> at the two side portions C shows antiferromagnetic characteristics and generates exchange coupling magnetic fields sufficient for firmly pinning the magnetization direction of the free magnetic layer <b>28</b> at the two side portions C.
P-0200[0200] Third Embodiment
P-0201[0201]FIG. 3 is a partial cross-sectional view of a magnetic sensing element according to a third embodiment of the present invention viewed from the opposing face.
P-0202[0202] The embodiment shown in FIG. 3 differs from that shown in FIG. 1 in that the nonmagnetic layer <b>32</b> has a uniform thickness. In other words, the center portion <b>32</b><i>b </i>and the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> have the same thickness.
P-0203[0203] When the thickness of the nonmagnetic layer <b>32</b> exceeds 3 Å, the concentration of Cr, which is the nonmagnetic substance, does not sufficiently decrease as a result of diffusion, and the nonmagnetic layer <b>32</b> remains thick after annealing. This eliminates the antiferromagnetic interaction between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> and inhibits the second antiferromagnetic layer <b>31</b> at the two side portions C and the third antiferromagnetic layers <b>33</b> from functioning as a single antiferromagnetic layer. Since the second antiferromagnetic layer <b>31</b> alone is so thin that no exchange coupling magnetic field is generated between the second antiferromagnetic layer <b>31</b> alone and the free magnetic layer <b>28</b>, the two side portions C of the second antiferromagnetic layer <b>31</b> do not properly transform into an ordered structure by field annealing. As a result, the exchange coupling magnetic fields generated between the two side portions C of the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> becomes small, if any. Moreover, the magnetization of the two side portions C of the free magnetic layer <b>28</b> cannot be firmly pinned in the track width direction (the X direction).
P-0204[0204] Accordingly, in this embodiment, the thickness of the nonmagnetic layer <b>32</b> should be 3 Å or less. More preferably, the thickness of the nonmagnetic layer <b>32</b> is 1 Å or less. The nonmagnetic layer <b>32</b> may have an average thickness of 0.2 Å. In other words, the average thickness of the nonmagnetic layer <b>32</b> is preferably in the range of 0.2 to 3 Å, and more preferably in the range of 0.2 to 1 Å.
P-0205[0205] As in the first embodiment, the second antiferromagnetic layer <b>31</b> of the third embodiment shown in FIG. 3 preferably has a thickness of 5 to 50 Å. The center portion D of the second antiferromagnetic layer <b>31</b> exhibits nonantiferromagnetic or nonmagnetic properties. The exchange coupling magnetic field between the center portion D of the second antiferromagnetic layer <b>31</b> and the center portion D of the free magnetic layer <b>28</b> is small, if any. The magnetization direction of the center portion D of the free magnetic layer <b>28</b> is properly oriented in the track width direction (the X direction) and rotates in response to external magnetic fields.
P-0206[0206] The second antiferromagnetic layer <b>31</b> are disposed on the free magnetic layer <b>28</b>, and the third antiferromagnetic layer <b>33</b> is disposed on each of the two side portions C of the second antiferromagnetic layer <b>31</b> with the nonmagnetic layer <b>32</b> therebetween. The second antiferromagnetic layer <b>31</b> exhibits antiferromagnetic properties as a result of the antiferromagnetic interaction between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. When these layers are annealed in a magnetic field, the two side portions C of the second antiferromagnetic layer <b>31</b> transforms into an ordered structure, and exchange coupling magnetic fields are produced between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the two side portions C. As a result, the magnetization direction of the free magnetic layer <b>28</b> in the two side portions C is firmly pinned in the track width direction (the X direction in the drawing).
P-0207[0207] Unlike conventional techniques, in this embodiment shown in FIG. 3, the free magnetic layer <b>28</b> is unaffected by ion milling, and the problem of magnetic characteristics degradation of the free magnetic layer <b>28</b> due to damage inflicted by ion milling does not occur.
P-0208[0208] According to the structure shown in FIG. 3, the magnetization directions of the free magnetic layer <b>28</b> can be properly controlled even with narrower tracks, and a magnetic sensing element that can meet the demand for narrower tracks can be obtained.
P-0209[0209] In the magnetic sensing element shown in FIG. 3 also, chromium atoms of the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b>. The diffusion of Cr atoms into the second antiferromagnetic layer <b>31</b> promotes the transformation of the PtMn alloy, the X—Mn alloy, and the Pt—Mn—X′ alloy into an ordered structure.
P-0210[0210] Accordingly, in the magnetic sensing element of this embodiment, the magnetization direction of the free magnetic layer <b>28</b> at the two side portions C can be firmly pinned in relation with the two side portions C of the second antiferromagnetic layer <b>31</b>, and side reading can be prevented.
P-0211[0211] In this embodiment, the crystal structure of the second antiferromagnetic layer <b>31</b> is, for example, of a CuAuI type. Chromium atoms diffusing from the nonmagnetic layer <b>32</b> partly replace the lattice points of the crystal lattice constituted from atoms of Pt and Mn, the crystal lattice constituted from atoms of X and Mn, or the crystal lattice constituted from atoms of Pt, Mn, and X′.
P-0212[0212] Fourth Embodiment
P-0213[0213]FIG. 4 is a partial cross-sectional view of a magnetic sensing element according to a fourth embodiment of the present invention.
P-0214[0214] Referring to FIG. 4, the seed layer <b>21</b>, the first antiferromagnetic layer <b>22</b>, the pinned magnetic layer <b>23</b>, the nonmagnetic material layer <b>27</b>, the free magnetic layer <b>28</b>, the second antiferromagnetic layer <b>31</b>, and the third antiferromagnetic layers <b>33</b> are sequentially formed on the substrate <b>20</b>. The material of each layer is the same as that of the first embodiment described above.
P-0215[0215] In this embodiment shown in FIG. 4, the third antiferromagnetic layer <b>33</b> is formed on each of the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b>. The electrode layer <b>34</b> is disposed on each of the third antiferromagnetic layers <b>33</b> with an interlayer <b>35</b> therebetween. The interlayer <b>35</b> is composed of Ta or the like.
P-0216[0216] In the embodiment shown in FIG. 4, the track width Tw is determined by the gap between the lower faces of the third antiferromagnetic layers <b>33</b>. The track width Tw is preferably 0.2 μm or less.
P-0217[0217] The nonmagnetic layer <b>32</b> covers the entire surface of the second antiferromagnetic layer <b>31</b>. The nonmagnetic layer <b>32</b> is thin and is composed of Cr. The Cr layer is rarely oxidized in the thickness direction when exposed to air.
P-0218[0218] The thickness of the nonmagnetic layer <b>32</b> is preferably 0.2 to 3 Å, and more preferably 0.2 to 1.0 Å. The term “thickness of 0.2 Å ” means the average thickness of the entire nonmagnetic layer <b>32</b> is 0.2 Å. Since the size of atoms is larger than 0.2 Å, the nonmagnetic layer <b>32</b> having an average thickness of 0.2 Å has an island structure including regions without atoms and regions with atoms.
P-0219[0219] When the nonmagnetic layer <b>32</b> has such a small thickness, an antiferromagnetic interaction can still be produced between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b>, although the nonmagnetic layer <b>32</b> is provided therebetween. As a result, the second antiferromagnetic layer <b>31</b> at the two side portions C exhibits antiferromagnetic properties and transforms into an ordered structure by field annealing. Exchange coupling magnetic fields are then produced between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the two side portions C, and the magnetization of the two side portions C of the free magnetic layer <b>28</b> is firmly pinned in the track width direction (the X direction).
P-0220[0220] Although the second antiferromagnetic layer <b>31</b> is formed on the center portion D of the free magnetic layer <b>28</b>, the thickness of the second antiferromagnetic layer <b>31</b> is so small that the second antiferromagnetic layer <b>31</b> alone does not exhibit antiferromagnetic properties. The thickness of the second antiferromagnetic layer <b>31</b> is preferably 5 to 50 Å, more preferably 10 to 50 Å, and most preferably 30 to 40 Å.
P-0221[0221] With this structure, the center portion D of the second antiferromagnetic layer <b>31</b> rarely transforms into an ordered structure even when field annealed. The exchange coupling magnetic field between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> at the center portion D is small, if any. The magnetization direction of the free magnetic layer <b>28</b> at the center portion D is moderately put in a single-magnetic-domain state so that the magnetization direction can rotate in response to external magnetic fields.
P-0222[0222] When the nonmagnetic layer <b>32</b> is composed of Cr, the exchange coupling magnetic fields (Hex) between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> can become larger than that with the nonmagnetic layer <b>32</b> composed of at least one of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0223[0223] The material, i.e., chromium, of the nonmagnetic layer <b>32</b> may diffuse into the second antiferromagnetic layer <b>31</b> and third antiferromagnetic layers <b>33</b> during field annealing for controlling the magnetization directions of the resist layer <b>38</b> and the pinned magnetic layer <b>23</b>. In particular, when the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> are composed of a PtMn alloy and the nonmagnetic layer <b>32</b> is composed of Cr, the region around the upper face of the second antiferromagnetic layer <b>31</b> and the region around the lower face of each third antiferromagnetic layer <b>33</b> become an antiferromagnetic layer composed of Cr—Pt—Mn.
P-0224[0224] In this embodiment, the nonmagnetic layer <b>32</b> functioning as a protective layer is deposited on the second antiferromagnetic layer <b>31</b>. Thus, the thickness h1 of the second antiferromagnetic layer <b>31</b> can be reduced to a thickness of 5 to 50 Å, e.g., approximately 10 Å. Chromium atoms diffusing from the nonmagnetic layer <b>32</b> into the second antiferromagnetic layer <b>31</b> having such a small thickness effectively promote the transformation into an ordered structure around the interface between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b>. Thus, the magnitude of the exchange coupling magnetic field generated at the interface can be increased.
P-0225[0225] Accordingly, in the magnetic sensing element of this embodiment, the magnetization of the two side portions C of the free magnetic layer <b>28</b> can be firmly pinned with the two side portions C of the second antiferromagnetic layer <b>31</b>. Thus, side reading can be reduced.
P-0226[0226] The fourth embodiment shown in FIG. 4 differs from the first to third embodiment shown in FIGS. <b>1</b> to <b>3</b> in that the end <b>33</b><i>a </i>of each third antiferromagnetic layer <b>33</b> is perpendicular to the surface of the substrate <b>20</b>, i.e., extends along the Z direction in the drawing. Such a difference in shape is derived from the difference in the manufacturing processes, as will be described later.
P-0227[0227] Alternatively, as in the first to third embodiments shown in FIGS. <b>1</b> to <b>3</b>, the side end face <b>33</b><i>a </i>may be formed as a flat or curved slope in such a manner that the gap between the ends <b>33</b><i>a </i>of the third antiferromagnetic layers <b>33</b> gradually increases along the Z direction.
P-0228[0228] The magnetic sensing elements shown in FIGS. <b>1</b> to <b>3</b> are manufactured by the same process whereas the magnetic sensing elements shown in FIGS. <b>4</b> to <b>6</b> (the fourth to six embodiments) are manufactured by a different process. The magnetic sensing elements shown in FIGS. <b>1</b> to <b>3</b> are similar in that the center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b> is disposed in the gap between the third antiferromagnetic layers <b>33</b>. In contrast, the magnetic sensing elements shown in FIGS. <b>4</b> to <b>6</b> are similar in that the nonmagnetic layer <b>32</b> is provided between the third antiferromagnetic layers <b>33</b> and the two side portions C of the second antiferromagnetic layer <b>31</b>.
P-0229[0229] The structures of magnetic sensing elements according to other embodiments manufactured by the same process as that of the fourth embodiment will now be described.
P-0230[0230] Fifth Embodiment
P-0231[0231]FIG. 5 is a partial cross-sectional view of a magnetic sensing element according to a fifth embodiment of the present invention viewed from the opposing face.
P-0232[0232] The magnetic sensing element of fifth embodiment differs from that of the fourth embodiment in that the third antiferromagnetic layer <b>33</b> is disposed on the center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b>.
P-0233[0233] In this embodiment shown in FIG. 5, the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> are separated from each other by the nonmagnetic layer <b>32</b> having a thickness of 0.2 to 3 Å therebetween and function as a single antiferromagnetic layer as a result of an antiferromagnetic interaction. The two side portions C of the second antiferromagnetic layer <b>31</b> exhibit antiferromagnetic properties. When field-annealed, the two side portions C of the second antiferromagnetic layer <b>31</b> transform into an ordered structure, and exchange coupling magnetic fields are generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the two side portions C. The two side portions C of the free magnetic layer <b>28</b> is thereby firmly pinned in the track width direction (the X direction).
P-0234[0234] The thickness of the third antiferromagnetic layer <b>33</b> is smaller in the center portion D than in the two side portions C.
P-0235[0235] Thus, the sum of the thickness h2 of the second antiferromagnetic layer <b>31</b> the thickness h3 of the third antiferromagnetic layer <b>33</b> at the center portion D must be small. Otherwise, the second antiferromagnetic layer <b>31</b> exhibits antiferromagnetic properties by an antiferromagnetic interaction with then third antiferromagnetic layer <b>33</b>, and ah exchange coupling magnetic field is generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the center portion D, which is undesirable.
P-0236[0236] Thus, the sum of the thickness h2 and the thickness h3 is preferably in the range of 5 to 50 Å, more preferably 10 to 50 Å, and most preferably 30 to 40 Å.
P-0237[0237] At such a thickness, the center portion D of the second antiferromagnetic layer <b>31</b> rarely transforms into an ordered structure by field annealing, and the antiferromagnetic interaction rarely occurs between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b>. Thus, the second antiferromagnetic layer <b>31</b> does not exhibit antiferromagnetic properties. The exchange coupling magnetic field generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the center portion D is small, if any. The magnetization direction in the center portion D of the free magnetic layer <b>28</b> is prevented from being pinned as firmly as the magnetization directions in the two side portions C.
P-0238[0238] In the embodiment shown in FIG. 5, the center portion D of the free magnetic layer <b>28</b> is moderately put in a single-magnetic-domain state so that the magnetization direction can rotate in response to external magnetic fields. This magnetic sensing element has superior sensitivity that can meet the demand for narrow tracks.
P-0239[0239] When the nonmagnetic layer <b>32</b> is composed of Cr, the exchange coupling magnetic fields (Hex) between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> become larger than that with the nonmagnetic layer <b>32</b> composed of at least one of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0240[0240] Accordingly, in the magnetic sensing element of this embodiment, the magnetization of the two side portions C of the free magnetic layer <b>28</b> can be firmly pinned with the two side portions C of the second antiferromagnetic layer <b>31</b>. Thus, side reading can be reduced.
P-0241[0241] Preferably, the noble metal layer <b>90</b> is disposed between the nonmagnetic layer <b>32</b> and the second antiferromagnetic layer <b>31</b>.
P-0242[0242] When the nonmagnetic layer <b>32</b> is deposited directly on the second antiferromagnetic layer <b>31</b>, transformation of the second antiferromagnetic layer <b>31</b> into an ordered structure occurs even though the thickness of the second antiferromagnetic layer <b>31</b> is small. As a result, the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the center portion readily increases, and the amount of change in the magnetization direction in response to external magnetic fields readily decreases. By providing the noble metal layer <b>90</b> between the nonmagnetic layer <b>32</b> and the second antiferromagnetic layer <b>31</b>, the tendency of the second antiferromagnetic layer <b>31</b> toward transformation into ordered structures can be adequately controlled. Accordingly, a decrease in the rate of change in magnetic resistance can be prevented.
P-0243[0243] The noble metal layer <b>90</b> is composed of at least one element selected from the group consisting of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0244[0244] Sixth Embodiment
P-0245[0245]FIG. 6 is a partial cross-sectional view of a magnetic sensing element according to a sixth embodiment of the present invention viewed from the opposing face.
P-0246[0246] The magnetic sensing element shown in FIG. 6 differs from that shown in FIG. 4 in that no nonmagnetic layer <b>32</b> is provided in the gap between the third antiferromagnetic layers <b>33</b> and that part of the second antiferromagnetic layer <b>31</b> is removed.
P-0247[0247] In the embodiment shown in FIG. 6, the nonmagnetic layer <b>32</b> composed of Cr having a thickness of 0.2 to 3 Å is formed on the third antiferromagnetic layer <b>33</b> at each of the two side portions C, and the third antiferromagnetic layer <b>33</b> is formed on each nonmagnetic layer <b>32</b>. The sum of the thickness of the third antiferromagnetic layer <b>33</b> and the second antiferromagnetic layer <b>31</b> at each of the two side portions C is preferably large, namely, 80 to 300 Å.
P-0248[0248] According to this structure, an antiferromagnetic interaction occurs between the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> through the nonmagnetic layers <b>32</b>. The two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b> functions as a single antiferromagnetic layer, and the two side portions C of the second antiferromagnetic layer <b>31</b> thus exhibit antiferromagnetic properties. The two side portions C of the second antiferromagnetic layer <b>31</b> transform into an ordered structure by field annealing, and exchange coupling magnetic fields are generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the two side portions C. As a result, the two side portions C of the free magnetic layer <b>28</b> is firmly pinned in the track width direction (the X direction).
P-0249[0249] The thickness of the second antiferromagnetic layer <b>31</b> at the center portion D is small, namely, 5 to 50 Å. At such a small thickness, the center portion D of the second antiferromagnetic layer <b>31</b> does not exhibit antiferromagnetic properties and does not transform into an ordered structure by field annealing. The exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the center portion D is small, if any. Accordingly, the center portion D of the free magnetic layer <b>28</b> is moderately put to a single-magnetic-domain state so that the magnetization direction of the center portion D can rotate in response to external magnetic fields. Thus, a magnetic sensing element having superior sensitivity that can meet the demand for narrower tracks can be obtained.
P-0250[0250] Alternatively, the center portion D of the second antiferromagnetic layer <b>31</b> may be completely removed, as indicated by broken lines F in FIG. 6 so as to expose the center portion D of the free magnetic layer <b>28</b>. In this manner, however, the exposed center portion D of the free magnetic layer <b>28</b> is likely to suffer damage inflicted by ion milling or reactive ion etching (RIE). It is preferable to leave some of the second antiferromagnetic layer <b>31</b> on the center portion D of the free magnetic layer <b>28</b>.
P-0251[0251] In the embodiment shown in FIG. 6, the center portion D of the second antiferromagnetic layer <b>31</b> is removed by ion milling. Damage inflicted by ion milling on the center portion D of the second antiferromagnetic layer <b>31</b> may degrade the magnetic characteristics. However, the center portion D of the second antiferromagnetic layer <b>31</b> is sufficiently thin so as not to exhibit antiferromagnetic properties and thus does not magnetically influence layers such as free magnetic layer <b>28</b>. Damage on the center portion D of the second antiferromagnetic layer <b>31</b> by ion milling is not likely to significantly affect the read characteristics.
P-0252[0252] When the nonmagnetic layer <b>32</b> is composed of Cr, the exchange coupling magnetic fields (Hex) between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at side portions C can become larger than that with the nonmagnetic layer <b>32</b> composed of at least one of Ru, Re, Pd, Os, Ir, Pt, Au, and Rh.
P-0253[0253] Accordingly, in the magnetic sensing element of this embodiment, the magnetization of the two side portions C of the free magnetic layer <b>28</b> can be firmly pinned with the two side portions C of the second antiferromagnetic layer <b>31</b>. Thus, side reading can be reduced.
P-0254[0254] In the above-described fourth to sixth embodiments shown in FIGS. <b>4</b> to <b>6</b>, instead of providing a separate nonmagnetic layer <b>32</b>, chromium atoms may be diffused into the second antiferromagnetic layer <b>31</b>. In such a case, the concentration of Cr atoms preferably increases toward the upper face of the second antiferromagnetic layer <b>31</b>.
P-0255[0255] In the magnetic sensing elements according to the first to sixth embodiments shown in FIGS. <b>1</b> to <b>6</b>, the electrode layer <b>34</b> is disposed on the third antiferromagnetic layer <b>33</b> disposed on each of two sides of the composite comprising layers from the substrate <b>20</b> to the second antiferromagnetic layer <b>31</b>. According to this structure, an electric current flows in the composite in a direction parallel to the surfaces of layers constituting the composite (a current-in-the-plane (CIP) magnetic sensing element).
P-0256[0256] Seventh Embodiment
P-0257[0257]FIG. 7 is a partial cross-sectional view of a magnetic sensing element according to a seventh embodiment of the present invention.
P-0258[0258] As shown in FIG. 7, the magnetic sensing element has a lower shield layer <b>65</b> and an upper shield layer <b>68</b> at the bottom and the top, respectively, of the composite film that includes layers from the seed layer <b>21</b> to the second antiferromagnetic layer <b>31</b>. The shield layers <b>65</b> and <b>68</b> also function as electrode layers. An electric current flows in the composite film between the shield layers <b>65</b> and <b>68</b> in a direction perpendicular to the surfaces of the layers of the composite film (current-perpendicular-to-the-plane (CPP) magnetic sensing element). The present invention is applicable to CPP magnetic sensing elements.
P-0259[0259] The layer structure of the composite film is the same as that of the first embodiment. The description is omitted to avoid redundancy. Note that the seed layer <b>21</b> shown in FIG. 7 may be omitted.
P-0260[0260] As shown in FIG. 7, the lower shield layer <b>65</b> that functions as the lower electrode is disposed under the seed layer <b>21</b>. The lower shield layer <b>65</b> is made by plating a magnetic material such as permalloy (NiFe).
P-0261[0261] The third antiferromagnetic layer <b>33</b> is formed on each of the two side portions C of the composite film with the nonmagnetic layer <b>32</b> therebetween. An insulating layer <b>67</b> is formed over the upper face <b>33</b><i>b </i>and the end <b>33</b><i>a. </i>
P-0262[0262] Referring again to FIG. 7, the upper shield layer <b>68</b> that also functions as the upper electrode is disposed over the insulating layer <b>67</b> and the center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b>.
P-0263[0263] According to this structure the electric current flows in the composite film in a direction parallel to the surfaces of the layers of the composite film.
P-0264[0264] Since the upper faces <b>33</b><i>b </i>and the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> are covered with the insulating layers <b>67</b>, the electric current flowing from the upper shield layer <b>68</b> into the composite film does not shunt to the third antiferromagnetic layers <b>33</b>. Thus, the structure shown in FIG. 7 prevents the current path from deviating outside the track width Tw. A CPP magnetic sensing element having a large output can be obtained.
P-0265[0265] Ends <b>67</b><i>a </i>of the insulating layers <b>67</b> preferably cover the two sides of the center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b>, as indicated by a dotted chain line in FIG. 7. According to this structure, the electric current can be prevented from shunting into the third antiferromagnetic layers <b>33</b>.
P-0266[0266] A nonmagnetic layer <b>69</b> indicated by a broken line in FIG. 7 may be provided over the insulating layer <b>67</b> and the center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b>, if necessary. The nonmagnetic layer <b>69</b> is preferably composed of a nonmagnetic conductive material such as Ta, Ru, Rh, Ir, Cr, Re, or Cu. The nonmagnetic layer <b>69</b> functions as an upper gap layer. Since the nonmagnetic layer <b>69</b> is disposed on the surface of the center portion D of the composite film, which is the entrance and exit of the electric current, an insulating material that inhibits the current from flowing into the sensing element is not preferred. The nonmagnetic layer <b>69</b> is preferably made of a nonmagnetic conductive material.
P-0267[0267] In this embodiment, the nonmagnetic material layer <b>27</b> shown in FIG. 7 may be made of a nonmagnetic conductive material so as to make a CPP spin-valve GMR head. Alternatively, the nonmagnetic material layer <b>27</b> may be made of an insulating material such as Al<sub>2</sub>O<sub>3 </sub>or SiO<sub>2 </sub>so as to make a CPP spin-valve tunneling magnetoresistive (TMR) head.
P-0268[0268] A tunneling magnetoresistive element utilized a spin tunneling effect to generate changes in resistance. When the magnetization directions of the pinned magnetic layer <b>23</b> and the free magnetic layer <b>28</b> are antiparallel to each other, tunneling current is prevented from flowing through the nonmagnetic material layer <b>27</b>, thereby giving the maximum resistance. When the magnetization directions of the pinned magnetic layer <b>23</b> and the free magnetic layer <b>28</b> are parallel to each other, the tunneling current flows easily, thereby giving the minimum resistance.
P-0269[0269] Based on this principle, as the magnetization direction of the free magnetic layer <b>28</b> changes in response to an external magnetic field, a change in electrical resistance is detected as a change in voltage (constant current operation) or as a change in current (constant voltage operation) so as to detect the leakage magnetic field from a recording medium.
P-0270[0270] Eighth and Ninth Embodiments
P-0271[0271]FIG. 8 shows a magnetic sensing element according to an eighth embodiment of the present invention. The magnetic sensing element is of a CPP type combining the magnetic sensing element shown in FIG. 2 and the magnetic sensing element shown in FIG. 7. FIG. 9 shows a magnetic sensing element according to a ninth embodiment of the present invention. The magnetic sensing element of this embodiment is of a CPP type combining the magnetic sensing element shown in FIG. 3 and the magnetic sensing element shown in FIG. 7.
P-0272[0272] Tenth Embodiment
P-0273[0273]FIG. 10 shows a magnetic sensing element according to a tenth embodiment of the present invention. The magnetic sensing element is of a CPP type combining the magnetic sensing element shown in FIG. 4 and the magnetic sensing element shown in FIG. 7. The magnetic sensing element shown in FIG. 10 differs from that shown in FIG. 7 in that first insulating layer <b>70</b> is formed on each upper face <b>33</b><i>b </i>of the third antiferromagnetic layer <b>33</b> and that a separate second insulating layer <b>71</b> is formed on each end <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b>. These differences are derived from differences in fabrication methods.
P-0274[0274] The first insulating layer <b>70</b> and the second insulating layer <b>71</b> have the same function as that of the insulating layer <b>67</b> shown in FIG. 7. The first and second insulating layers <b>70</b> and <b>71</b> properly prevents an electric current flowing in the composite film from shunting into the third antiferromagnetic layers <b>33</b> from the upper shield layer <b>68</b>.
P-0275[0275] The first and second insulating layers <b>70</b> and <b>71</b> are composed of an insulating material such as Al<sub>2</sub>O<sub>3</sub>, SiO<sub>2</sub>, AlN, Al—Si—O—N, Al—Si—O, Ti<sub>2</sub>O<sub>3</sub>, Ti<sub>3</sub>O<sub>5</sub>, or Ta<sub>2</sub>O<sub>5</sub>.
P-0276[0276] In the embodiment shown in FIG. 10, the end <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> is perpendicular with respect to the track width direction (the X direction). Alternatively, the gap between the third antiferromagnetic layers <b>33</b> may be arranged to gradually increase along the Z direction. In such a case each end <b>33</b><i>a </i>may be formed as a flat or curved slope.
P-0277[0277] When the ends <b>33</b><i>a </i>are formed as flat or curved slopes, it is relatively easy to deposit the second insulating layers <b>71</b> to a proper thickness on the ends <b>33</b><i>a</i>. Thus, shunt loss can be decreased.
P-0278[0278] As shown in FIG. 10, the upper face <b>33</b><i>b </i>and the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> are covered with the first and second insulating layers <b>70</b> and <b>71</b>. According to this structure, an electric current flowing in the composite film does not shunt into the third antiferromagnetic layers <b>33</b> and flows within the track width Tw determined by the gap between the second insulating layers <b>71</b>. The magnetic sensing element shown in FIG. 10 can thus exhibit large output.
P-0279[0279] The nonmagnetic layer <b>69</b> may be provided over the first and second insulating layers <b>70</b> and <b>71</b> and the center portion D of the composite film, as indicated by a broken line in FIG. 10. The nonmagnetic layer <b>69</b> is preferably composed of a nonmagnetic conductive material such as Ta, Ru, Rh, Ir, Cr, Re, or Cu. The nonmagnetic layer <b>69</b> functions as an upper gap layer. Since the nonmagnetic layer <b>69</b> is disposed on the surface of the center portion D of the composite film, which is the entrance and exit of the electric current, an insulating material that inhibits the current from flowing into the sensing element is not preferred. The nonmagnetic layer <b>69</b> is preferably made of a nonmagnetic conductive material.
P-0280[0280] In this embodiment shown in FIG. 10, the nonmagnetic material layer <b>27</b> may be made of a nonmagnetic conductive material so as to make a CPP spin-valve GMR head. Alternatively, the nonmagnetic material layer <b>27</b> may be made of an insulating material such as Al<sub>2</sub>O<sub>3 </sub>or SiO<sub>2 </sub>so as to make a CPP spin-valve tunneling magnetoresistive (TMR) head.
P-0281[0281] Eleventh and Twelfth Embodiments
P-0282[0282]FIG. 11 shows a CPP magnetic sensing element according to a eleventh embodiment of the present invention combining the magnetic sensing element shown in FIG. 5 and the magnetic sensing element shown in FIG. 10. FIG. 12 shows a CPP magnetic sensing element according to a twelfth embodiment of the present invention combining the magnetic sensing element shown in FIG. 6 and the magnetic sensing element shown in FIG. 10.
P-0283[0283] Thirteenth and Fourteenth Embodiments
P-0284[0284] Magnetic sensing elements according to the thirteenth and fourteenth embodiments of the present invention shown in FIGS. 13 and 14 are the same as those shown in FIGS. 7 and 12 in that they are of a CPP type but differ in the shape of the lower shield layer <b>65</b>.
P-0285[0285] Referring now to FIG. 13, the lower shield layer <b>65</b>, which also functions as the lower electrode, of the magnetic sensing element according of the thirteenth embodiment has a protrusion <b>65</b><i>a </i>at the center portion D in the track width direction (the X direction). The protrusion <b>65</b><i>a </i>projects toward the composite film in the Z direction. An upper face <b>65</b><i>a</i><b>1</b> of the protrusion <b>65</b><i>a </i>is in contact with the lower face of the seed layer <b>21</b>. In this structure, an electric current flows into the composite film via the protrusion <b>65</b><i>a </i>(or an electric current flows from the composite film to the protrusion <b>65</b><i>a</i>).
P-0286[0286] In the thirteenth embodiment shown in FIG. 13, an insulating layer <b>78</b> is formed on each of two side portions <b>65</b><i>b </i>of the lower shield layer <b>65</b> in the track width direction and between the side portion <b>65</b><i>b </i>and the seed layer <b>21</b>. The insulating layer <b>78</b> is composed of an insulating material such as Al<sub>2</sub>O<sub>3</sub>, SiO<sub>2</sub>, AlN, Al—Si—O—N, Al—Si—<b>0</b>, Ti<sub>2</sub>O<sub>3</sub>, Ti<sub>3</sub>O<sub>5</sub>, or Ta<sub>2</sub>O<sub>5</sub>.
P-0287[0287] In the embodiment shown in FIG. 13, the current path is narrowed by the protrusion <b>65</b><i>a </i>of the lower shield layer <b>65</b>. Since the insulating layers <b>78</b> are provided between the composite film and the two side portions <b>65</b><i>b </i>of the lower shield layer <b>65</b>, the electric current flowing in the composite film is prevented from shunting through the two side portions <b>65</b><i>b</i>. As a result, the magnetic sensing element exhibits large output with narrower effective track width.
P-0288[0288] In the embodiment shown in FIG. 13, the length of the upper face <b>65</b><i>a</i><b>1</b> of the protrusion <b>65</b><i>a </i>of the lower shield layer <b>65</b> in the track width direction (the X direction) is the same as that of the center portion D in the track width direction (the X direction). Alternatively, the length of the upper face <b>65</b><i>a</i><b>1</b> in the track width direction may be larger than that of the center portion D. Most preferably, the length of the upper face <b>65</b><i>a</i><b>1</b> in the track width direction is the same as that of the track width Tw. In this manner, an electric current can be effectively supplied to the magnetic sensing element only in the side portion. Thus, the magnetic sensing element exhibits a large output.
P-0289[0289] As shown in FIG. 13, two side faces <b>65</b><i>a</i><b>2</b> of the protrusion <b>65</b><i>a </i>are formed as flat or curved slopes so that the length of the protrusion <b>65</b><i>a </i>in the track width direction gradually increases along the direction opposite to the Z direction. Alternatively, the two side faces <b>65</b><i>a</i><b>2</b> may be perpendicular to the track width direction (the X direction).
P-0290[0290] The magnetic sensing element of the fourteenth embodiment shown in FIG. 14 also has the lower shield layer <b>65</b> having the same shape as in the thirteenth embodiment shown in FIG. 13. Since the arrangement of the upper face <b>65</b><i>a</i><b>1</b>, the seed layer <b>21</b>, and the insulating layers <b>78</b> are the same as in the thirteenth embodiment, the description thereof is omitted to avoid redundancy.
P-0291[0291] The fourteenth embodiment differs from the thirteenth embodiment in that no insulating layer <b>67</b> is provided on the upper face <b>33</b><i>b </i>and the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b>. Moreover, the upper shield layer <b>68</b>, which also functions as the upper electrode, is in direct contact with the center portion D of the composite film and the third antiferromagnetic layers <b>33</b>.
P-0292[0292] In the embodiment shown in FIG. 14, the upper shield layer <b>68</b> is not insulated from the third antiferromagnetic layers <b>33</b>. Thus, the current path tends to broaden beyond the track width Tw, and the output may be degraded as a result. However, since the protrusion <b>65</b><i>a </i>of the lower shield layer <b>65</b> narrows the current path at the bottom face of the magnetic sensing element, the broadening of the current path can be inhibited, and a decrease in output can be avoided.
P-0293[0293] Preferably, the upper face <b>65</b><i>a</i><b>1</b> of the protrusion <b>65</b><i>a </i>formed in the lower shield layer <b>65</b> is flush with the upper faces of the insulating layers <b>78</b> disposed at the sides. In this manner, layers of the composite film can be formed parallel to each other in the track width direction, and a magnetic sensing element having superior read characteristics can be made.
P-0294[0294] Note that the thirteenth and fourteenth embodiments shown in FIGS. 13 and 14 may be applied to a CPP magnetic sensing element shown in FIGS. <b>8</b> to <b>12</b>.
P-0295[0295] The CPP magnetic sensing elements shown in FIGS. <b>7</b> to <b>14</b> have the lower and upper shield layers (electrodes) <b>65</b> and <b>68</b> in contact with the bottom and the top of the composite film, respectively, so that no separate electrode layers are necessary. Thus, the process for making CPP magnetic sensing elements can be simplified.
P-0296[0296] Moreover, when the shield layers also function as electrodes, the gap length G1 between shield layers can be decreased (refer to FIG. 7). Note when the nonmagnetic layer <b>69</b> is provided, the gap length G1 also determined by the thickness of the nonmagnetic layer <b>69</b>. Accordingly, a magnetic sensing element that can meet the trend for higher recording density can be obtained.
P-0297[0297] The application of the present invention is not limited to the embodiments shown in FIGS. <b>7</b> to <b>14</b>. An electrode layer composed of Au, W, Cr, Ta, or the like may be provided at the bottom and/or the top of the composite film, and a shield layer composed of magnetic material may be disposed on the surface of the electrode layer remote from the magnetic sensing element.
P-0298[0298] The free magnetic layer <b>28</b> of the present invention will now be described.
P-0299[0299] The free magnetic layer <b>28</b> shown in each of the first to fourteenth embodiments shown in FIGS. <b>1</b> to <b>14</b> has a two-layer structure comprising the anti-diffusion sublayer <b>29</b> and the magnetic material sublayer <b>30</b>. The anti-diffusion sublayer <b>29</b> is composed of Co, CoFe, or the like and prevents interdiffusion between the free magnetic layer <b>28</b> and the nonmagnetic material layer <b>27</b>. The magnetic material sublayer <b>30</b> is disposed on the anti-diffusion sublayer <b>29</b> and is composed of a magnetic material such as a NiFe alloy.
P-0300[0300] Alternatively, the free magnetic layer <b>28</b> may be of a single layer structure composed of a magnetic material such as a NiFe alloy, a CoFe alloy, a CoFeNi alloy, elemental Co, or a CoNi alloy. Preferably, the free magnetic layer is composed of a CoFeNi alloy.
P-0301[0301]FIG. 15 is an enlarged partial cross-sectional view of an example of the free magnetic layer <b>28</b> according to the present invention viewed from the opposing face.
P-0302[0302] In FIG. 15, the free magnetic layer <b>28</b> has a three-layer structure comprising a magnetic material sublayers <b>36</b> to <b>38</b>. The magnetic material sublayer <b>36</b> is an anti-diffusion sublayer for preventing the diffusion of atoms into the nonmagnetic material layer <b>27</b>. The magnetic material sublayer <b>36</b> is composed of CoFe, Co, or the like.
P-0303[0303] The magnetic material sublayer <b>38</b> is in contact with the second antiferromagnetic layer <b>31</b>. The magnetic material sublayer <b>38</b> is preferably made of a CoFe alloy so that the magnitude of the exchange coupling magnetic field generated between the magnetic material sublayer <b>38</b> and the second antiferromagnetic layer <b>31</b> can be increased.
P-0304[0304] An example of the materials for the three-layer structure is magnetic material sublayer <b>36</b>: CoFe/magnetic material sublayer <b>37</b>: NiFe/magnetic material sublayer <b>38</b>: CoFe.
P-0305[0305] The thickness of the free magnetic layer <b>28</b> composed of only a magnetic material is preferably approximately 30 to 40 Å. An example of the composition of a CoFe alloy used in the free magnetic layer <b>28</b> is Co: 90 at % and Fe: 10 at %.
P-0306[0306]FIG. 16 is an enlarged partial cross sectional view of another example of the free magnetic layer <b>28</b>. The free magnetic layer <b>28</b> shown in FIG. 16 has a so-called synthetic ferrimagnetic structure. With this structure, the effective magnetic thickness of the free magnetic layer <b>28</b> can be decreased without significantly decreasing the physical thickness of the free magnetic layer <b>28</b>. Thus, the sensitivity toward external magnetic fields can be enhanced.
P-0307[0307] Referring to FIG. 16, the free magnetic layer <b>28</b> is constituted from magnetic sublayers <b>39</b> and <b>41</b> and a nonmagnetic interlayer <b>40</b>. The magnetic sublayers <b>39</b> and <b>41</b> are composed of a magnetic material such as a NiFe alloy, a CoFe alloy, a CoFeNi alloy, elemental Co, or a CoNi alloy. Preferably, at least one of the magnetic sublayers <b>39</b> and <b>41</b> is composed of a CoFeNi alloy. The CoFeNi alloy preferably contains 9 to 17 at % of Fe, 0.5 to 10 at % of Ni, and the balance being Co.
P-0308[0308] In this manner, the coupling magnetic field resulting from a Ruderman-Kittel-Kasuya-Yosida (RKKY) interaction can be increased. In particular, the spin-flop magnetic field (Hsf) can be increased to approximately at least 293 kA/m. As a result, the magnetization directions of the magnetic sublayers <b>39</b> and <b>41</b> can be properly oriented antiparallel to each other. Moreover, by using the CoFeNi alloy satisfying the above-described composition ranges, the magnetostriction of the free magnetic layer <b>28</b> can be adjusted within the range of −3×10<sup>−6 </sup>to 3×10<sup>−6</sup>, and the coercive force can be reduced to 790 Å/m or less. Moreover, the soft magnetic characteristics of the free magnetic layer <b>28</b> can be improved, and a decrease in amount of change in resistance (ΔR) and in rate of change in resistance (ΔR/R) due to diffusion of Ni atoms between the free magnetic layer <b>28</b> and the nonmagnetic material layer <b>27</b> can be avoided.
P-0309[0309] The nonmagnetic interlayer <b>40</b> is preferably made of at least one selected from the group consisting of Ru, Rh, Ir, Cr, Re, and Cu.
P-0310[0310] The thickness of the magnetic sublayer <b>39</b> is, for example, approximately 35 Å. The thickness of the nonmagnetic interlayer <b>40</b> is, for example, approximately 9 Å. The thickness of the magnetic sublayer <b>41</b> is, for example, approximately 15 Å.
P-0311[0311] Fifteenth Embodiment
P-0312[0312] A magnetic sensing element having the free magnetic layer <b>28</b> of a synthetic ferromagnetic structure is illustrated in FIG. 19 (a fifteenth embodiment). As shown in FIG. 19, the layers from the magnetic sublayer <b>41</b> and above are completely removed at the center portion D, and the nonmagnetic interlayer <b>40</b> is exposed between the third antiferromagnetic layers <b>33</b>. According to this structure, the center portion D of the free magnetic layer <b>28</b> does not have a synthetic ferrimagnetic structure and functions as a free magnetic layer composed of only a normal magnetic layer. In contrast, the two side portions C of the free magnetic layer <b>28</b> have a synthetic ferrimagnetic structure. This structure increases the magnitude of the unidirectional bias magnetic field, reliably pins the magnetization directions of the two side portions C of the free magnetic layer <b>28</b> in the track width direction, and prevents side reading.
P-0313[0313] An anti-diffusion layer composed of a CoFe alloy, elemental Co, or the like may be formed between the magnetic sublayer and the nonmagnetic material layer <b>27</b>. Moreover, a magnetic layer made of a CoFe alloy may be provided between the magnetic sublayer <b>41</b> and the second antiferromagnetic layer <b>31</b>.
P-0314[0314] In such a case, the CoFeNi alloy constituting the magnetic sublayer and/or the magnetic sublayer <b>41</b> preferably contains 7 to 15 at % of Fe, 5 to 15 at % of Ni, and the balance being Co.
P-0315[0315] With this alloy, the magnitude of the coupling magnetic field resulting from a Ruderman-Kittel-Kasuya-Yosida (RKKY) interaction can be increased. In particular, the spin-flop magnetic field (Hsf) can be increased to approximately at least 293 kA/m. As a result, the magnetization directions of the magnetic sublayers <b>39</b> and <b>41</b> can be properly oriented antiparallel to each other. Moreover, by using the CoFeNi alloy satisfying the above-described composition ranges, the magnetostriction of the free magnetic layer <b>28</b> can be adjusted within the range of −3×10<sup>−6 </sup>to 3×10<sup>−6</sup>, and the coercive force can be reduced to 790 Å/m or less. Moreover, the soft magnetic characteristics of the free magnetic layer <b>28</b> can be improved.
P-0316[0316] When the free magnetic layer <b>28</b> has a synthetic ferrimagnetic structure, chromium atoms diffusing from the nonmagnetic layer <b>32</b> preferably exist in a region at the nonmagnetic-interlayer <b>40</b> side from the interface between the magnetic sublayer <b>41</b> and the second antiferromagnetic layer <b>31</b>. More preferably, a chromium-atom-free region exists in a region at the second-antiferromagnetic-layer-<b>31</b>-side from the interface between the magnetic sublayer <b>41</b> and the nonmagnetic interlayer <b>40</b>.
P-0317[0317] In this manner, the magnitude of the coupling exchange coupling magnetic field (Hex) between the magnetic sublayer <b>41</b> and the second antiferromagnetic layer <b>31</b> can be increased. Moreover, the magnitudes of the antiparallel coupling magnetic between the magnetic sublayer <b>41</b> and the magnetic sublayer with the nonmagnetic interlayer <b>40</b> therebetween resulting from the RKKY interaction can be increased. Thus, the unidirectional exchange bias magnetic fields (Hex*) at the two side portions of the free magnetic layer <b>28</b> can be increased compared to conventional techniques.
P-0318[0318] The unidirectional exchange bias magnetic field (Hex*) at the two side portions of the free magnetic layer <b>28</b> can still be increased when the chromium content at the interface between the magnetic sublayer <b>41</b> and the second antiferromagnetic layer <b>31</b> is larger than the chromium content at the interface between the nonmagnetic interlayer <b>40</b> and the magnetic sublayer <b>41</b>.
P-0319[0319] However, in order to increase the coupling magnetic field between the magnetic sublayer and the magnetic sublayer <b>41</b> as a result of the RKKY interaction, a chromium-free magnetic region preferably exists at the interface between the nonmagnetic interlayer <b>40</b> and the magnetic sublayer <b>41</b>.
P-0320[0320]FIG. 17 is a partial enlarged cross-sectional view showing another example of the free magnetic layer <b>28</b>. As shown in FIG. 17, the free magnetic layer <b>28</b> has magnetic material sublayers <b>42</b> and <b>44</b> and a specular film <b>43</b> disposed between the magnetic material sublayers <b>42</b> and <b>44</b>. The specular film <b>43</b> may include defective parts (pinholes) G, as shown in FIG. 18. The magnetic material sublayers <b>42</b> and <b>44</b> are magnetized in antiparallel to each other with the specular film <b>43</b> therebetween.
P-0321[0321] The magnetic material sublayers <b>42</b> and <b>44</b> is made of a magnetic material such as a NiFe alloy, a CoFe alloy, a CoFeNi alloy, elemental Co, or a CoNi alloy.
P-0322[0322] When the specular film <b>43</b> is in the free magnetic layer <b>28</b>, conduction electrons, such as spin-up conduction electrons, are specular-reflected at the specular film <b>43</b> while maintaining their spinning state, i.e., the energy and the quantum state. The reflected spin-up conduction electrons change the direction and can pass through the free magnetic layer.
P-0323[0323] Thus, the mean free path λ<sup>+</sup> of the spin-up conduction electrons can be increased by providing the specular film <b>43</b>. Accordingly, the difference between the mean free path λ<sup>+</sup> of the spin-up conduction electrons and the mean free path λ<sup>−</sup> of the spin-down conduction electrons can be widened, and the rate of change in resistance (ΔR/R) and the output can be improved.
P-0324[0324] The specular film <b>43</b> is made as follows. The layers up to the magnetic material sublayer <b>42</b> are first deposited, and the surface of the magnetic material sublayer <b>42</b> is oxidized. The oxidized part of the magnetic material sublayer <b>42</b> functions as the specular film <b>43</b>. The nonmagnetic material layer <b>44</b> is then deposited on the specular film <b>43</b>.
P-0325[0325] Examples of the material of the specular film <b>43</b> include oxides such as Fe—O, Ni—O, Co—O, Co—Fe—O, Co—Fe—Ni—O, Al—O, Al-Q-O (wherein Q is at least one selected from the group consisting of B, Si, N, Ti, V, Cr, Mn, Fe, Co, and Ni), and R—O (wherein R is at least one selected from the group consisting of Cu, Ti, V, Cr, Zr, Nb, Mo, Hf, Ta, and W); nitrides such as Al—N, Al-Q-N (wherein Q is at least one selected from the group consisting of B, Si, O, Ti, V, Cr, Mn, Fe, Co, and Ni), and R—N (wherein R is at least one selected from the group consisting of Ti, V, Cr, Zr, Nb, Mo, Hf, Ta, and W); and Heusler alloys.
P-0326[0326]FIG. 18 is a partial enlarged cross-sectional view of yet another example of the free magnetic layer <b>28</b>.
P-0327[0327] The free magnetic layer <b>28</b> shown in FIG. 18 is constituted from a magnetic sublayer <b>45</b> and a back sublayer <b>46</b>. The back sublayer <b>46</b> is disposed between the magnetic sublayer <b>45</b> and the second antiferromagnetic layer <b>31</b>. The back sublayer <b>46</b> is made of, for example, Cu, Au, Cr, or Ru. The magnetic sublayer <b>45</b> is made of a magnetic material such as a NiFe alloy, a CoFe alloy, a CoFeNi alloy, elemental Co, or a CoNi alloy.
P-0328[0328] The back sublayer <b>46</b> is formed to extend the mean free path of the spin-up conduction electrons that contribute to the magnetoresistive effect. By a so-called spin-filter effect, the resulting magnetic sensing element exhibits a large rate of change in resistance and can meet the demand for higher recording densities. Since the back sublayer <b>46</b> functions as a medium for the exchange coupling, the magnitude of the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the nonmagnetic material layer <b>4</b> may slightly decrease, but is still maintained at a sufficient magnitude.
P-0329[0329] Sixteenth Embodiment
P-0330[0330]FIG. 20 shows a magnetic sensing element according to a sixteenth embodiment of the present invention. The magnetic sensing element shown in FIG. 20 is based on the structures shown in FIGS. 10 and 19. In particular, the first insulating layer <b>70</b> is disposed on each of the upper faces <b>33</b><i>b </i>of the third antiferromagnetic layers <b>33</b>, and the second insulating layer <b>71</b> is formed on the end <b>33</b><i>a </i>of each third antiferromagnetic layer <b>33</b> and on the end of each of the second antiferromagnetic layers <b>31</b>. The lower shield layer (electrode) <b>65</b> composed of a magnetic material is disposed at the bottom of the composite film. The upper shield layer <b>68</b> is disposed to cover the first insulating layer <b>70</b>, the second insulating layer <b>71</b>, and the center portion D of the composite film.
P-0331[0331] Alternatively, the nonmagnetic layer <b>69</b> composed of a nonmagnetic conductive material such as Ta may be provided between the upper shield layer <b>68</b> and the first insulating layer <b>70</b>, between the upper shield layer <b>68</b> and the second insulating layer <b>71</b>, and between the center portion D of the composite film and the upper shield layer <b>68</b>, as indicated by a broken line in FIG. 20.
P-0332[0332] The second antiferromagnetic layer <b>31</b> of each magnetic sensing element shown in FIGS. <b>1</b> to <b>14</b>, <b>19</b>, and <b>20</b> is composed of, for example, a Cr-containing PtMn alloy, an Cr-containing X—Mn alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, or a Cr-containing Pt—Mn—X′ alloy, wherein X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Ni, Ar, Ne, Xe, and Kr, may also be used to form the second antiferromagnetic layer <b>31</b>.
P-0333[0333] When the second antiferromagnetic layer <b>31</b> is composed of a PtMnCr alloy, X—Mn—Cr alloy, or a Pt—Mn—X—Cr alloy, the region around the interface between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> can easily transform into an ordered structure by annealing. Thus, in such a case, the thickness of the second antiferromagnetic layer <b>31</b> is adjusted in the range of 5 to 10 Å so as to prevent the second antiferromagnetic layer <b>31</b> from transforming into an ordered structure prior to the formation of the third antiferromagnetic layer <b>33</b>.
P-0334[0334] In each of the above-described embodiments of the present invention, the nonmagnetic layer <b>32</b> is made of Cr. Alternatively, the nonmagnetic layer <b>32</b> may be made of at least one of Ti, Zr, Hf, V, Nb, Al, Si, Mo, W, Y, and rare earth elements.
P-0335[0335] FIGS. <b>21</b> to <b>23</b> show steps of fabricating the magnetic sensing element show in FIG. 1. FIGS. 21 and 23 are partial cross-sectional viewed from the opposing face.
P-0336[0336] In the step shown in FIG. 21, the seed layer <b>21</b>, the first antiferromagnetic layer <b>22</b>, the pinned magnetic layer <b>23</b>, the nonmagnetic material layer <b>27</b>, the free magnetic layer <b>28</b>, the second antiferromagnetic layer <b>31</b>, and the nonmagnetic layer <b>32</b> are sequentially formed on the substrate <b>20</b>. These layers are formed by sputtering or vapor deposition. The pinned magnetic layer <b>23</b> shown in FIG. 21 has, for example, a synthetic ferrimagnetic structure comprising the magnetic sublayers <b>24</b> and <b>26</b> composed of a CoFe alloy or the like and the nonmagnetic interlayer <b>25</b> composed of Ru. The nonmagnetic interlayer <b>25</b> is disposed between the magnetic sublayers <b>24</b> and <b>26</b>. The free magnetic layer <b>28</b> has, for example, a synthetic ferrimagnetic structure comprising the anti-diffusion sublayer <b>29</b> composed of a CoFe alloy or the like and the magnetic material sublayer <b>30</b> composed of a NiFe alloy.
P-0337[0337] Preferably, the first antiferromagnetic layer <b>22</b> is composed of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr.
P-0338[0338] Preferably, the second antiferromagnetic layer <b>31</b> is composed of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr.
P-0339[0339] The PtMn alloy and the X—Mn alloy preferably contain 37 to 63 at % of Pt and X, respectively. The PtMn alloy and the X—Mn alloy preferably contain 47 to 57 at % of Pt and X, respectively.
P-0340[0340] The Pt—Mn—X′ alloy preferably contains 37 to 63 at %, and, more preferably, 47 to 57 at % of X′+Pt. The Pt—Mn—X′ preferably contains 0.2 to 10 at % of X′. However, when the X′ is at least one of Pd, Ir, Rh, Ru, Os, Ni, and Fe, the X′ content is preferably in the range of 0.2 to 40 at %.
P-0341[0341] The thickness of the first antiferromagnetic layer <b>22</b> is preferably in the range of 80 to 300 Å. At such a thickness, a large exchange coupling magnetic field can be generated between the first antiferromagnetic layer <b>22</b> and the pinned magnetic layer <b>23</b> by field annealing. In particular, an exchange coupling magnetic field of 48 kA/m or more, for example, exceeding 64 kA/m can be generated.
P-0342[0342] The thickness of the second antiferromagnetic layer <b>31</b> is preferably in the range of 5 to 50 Å, more preferably, 10 to 50 Å, and most preferably 30 to 40 Å.
P-0343[0343] One of the features of the present invention is to form the second antiferromagnetic layer <b>31</b> at such a small thickness.
P-0344[0344] When the second antiferromagnetic layer <b>31</b> has a thickness of 50 Å or less, the second antiferromagnetic layer <b>31</b> exhibits nonantiferromagnetic properties. Thus, the second antiferromagnetic layer <b>31</b> rarely transforms into an ordered structure even after a first field annealing process described below. As a result, the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> is small, if any. The magnetization direction of the free magnetic layer <b>28</b> is not as firmly pinned as the pinned magnetic layer <b>23</b>.
P-0345[0345] The thickness of the second antiferromagnetic layer <b>31</b> is preferably at least 5 Å, and more preferably at least 10 Å. Otherwise, the two side portions C of the second antiferromagnetic layer <b>31</b> do not easily exhibit antiferromagnetic properties even after the third antiferromagnetic layers <b>33</b> are formed. As a result, an exchange coupling magnetic field having a proper magnitude cannot be generated between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> at the two side portions C.
P-0346[0346] Referring again to FIG. 21, the nonmagnetic layer <b>32</b> also prevents the second antiferromagnetic layer <b>31</b> from oxidation resulting from exposure to air.
P-0347[0347] The nonmagnetic layer <b>32</b> is made of Cr. The dense nonmagnetic layer <b>32</b> composed of Cr is rarely oxidized in the thickness direction by exposure to air. Thus, the thickness of the nonmagnetic layer <b>32</b> need not be large to prevent the oxidization of the second antiferromagnetic layer <b>31</b>. The thickness of the nonmagnetic layer <b>32</b> is preferably 2 to 10 Å, and more preferably 2 to 5 Å.
P-0348[0348] Another feature of the present invention is to form the nonmagnetic layer <b>32</b> with Cr at a small thickness such as approximately 2 to 10 Å. This allows low energy ion milling in the step shown in FIG. 22. The milling process can be more accurately controlled, as will be described below in the step shown in FIG. 22.
P-0349[0349] The layers up to the nonmagnetic layer <b>32</b> shown in FIG. 21 disposed on the substrate <b>20</b> are then subjected to first field annealing. In particular, the layers are annealed at a first annealing temperature while applying a first magnetic field in a direction orthogonal to the track width direction, i.e., a first magnetic field in the Y direction orthogonal to the X direction. By the first field annealing, the exchange coupling magnetic field is generated between the first antiferromagnetic layer <b>22</b> and magnetic sublayer <b>24</b> of the pinned magnetic layer <b>23</b>, and the magnetic sublayer <b>24</b> is magnetized in the Y direction. The magnetic sublayer <b>26</b> is magnetized in a direction opposite to the Y direction by exchange coupling resulting from the RKKY interaction with the magnetic sublayer <b>24</b>. For example, the first annealing temperature is 270° C., and the magnitude of the applied magnetic field is 800 kA/m.
P-0350[0350] As described above, the magnitude of the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the magnetic material sublayer <b>30</b> is small, if any. This is because the second antiferromagnetic layer <b>31</b> has a small thickness of 50 Å or less and thus does not exhibit antiferromagnetic properties.
P-0351[0351] Chromium atoms constituting the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b> by the first field annealing. The region of the second antiferromagnetic layer <b>31</b> close to the interface with the nonmagnetic layer <b>32</b> thus contains Cr in addition to the material of the second antiferromagnetic layer <b>31</b>. The concentration of Cr is higher in the upper part of the second antiferromagnetic layer <b>31</b> than in the lower part of the second antiferromagnetic layer <b>31</b>. The Cr concentration gradually decreases toward the lower face of the second antiferromagnetic layer <b>31</b>. Such a gradual change in composition can be examined with a SIMS analyzer or the like.
P-0352[0352] Next, in the step shown in FIG. 22, a resist layer is formed on the upper face of the nonmagnetic layer <b>32</b>. The resist layer is exposed and developed so as to leave a resist layer <b>49</b> having the shape shown in FIG. 22 on the nonmagnetic layer <b>32</b>. For example the resist layer <b>49</b> is a lift-off resist layer.
P-0353[0353] The two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> not covered by the resist layer <b>49</b> are then partly removed by ion milling in the direction indicated by arrows H in FIG. 22. Portions of the nonmagnetic layer <b>32</b> indicated by broken lines in FIG. 22 are removed as a result.
P-0354[0354] The two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> are partly removed for the following reasons. The thickness of the two side portions <b>32</b><i>a </i>must be small in order to induce an antiferromagnetic interaction between the third antiferromagnetic layers <b>33</b> and the two side portions C of the second antiferromagnetic layer <b>31</b> in the subsequent step. Otherwise, the two side portions C of the second antiferromagnetic layer <b>31</b> do not exhibit antiferromagnetic properties, and the magnetization directions at the two side portions C of the free magnetic layer <b>28</b> cannot be firmly pinned.
P-0355[0355] The two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> are preferably milled to a thickness of 3 Å or less, and more preferably 1.0 Å or less by ion milling. In this manner, an antiferromagnetic interaction can be induced between the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. As a result, the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> can function as a single antiferromagnetic layer, and the two side portions C of the second antiferromagnetic layer <b>31</b> can exhibit antiferromagnetic properties. In order to protect the surfaces of the Cs of the second antiferromagnetic layer <b>31</b>, the thickness of the two side portions <b>32</b><i>a </i>is preferably at least 0.2 Å (average thickness).
P-0356[0356] In the ion milling step shown in FIG. 22, low-energy ion milling is employed. This is because the nonmagnetic layer <b>32</b> has a small thickness of approximately 2 to 10 Å, and more preferably 2 to 5 Å.
P-0357[0357] According to a conventional process shown in FIG. 37 that uses the Ta film <b>9</b>, the Ta film <b>9</b> itself is oxidized by exposure to air. Thus, the thickness of the Ta film <b>9</b> must be 30 to 50 Å in order to sufficiently protect the underlying layer from oxidizing. Since the volume of the Ta film <b>9</b> increases by the oxidation, the thickness of the Ta film <b>9</b> may exceed 50 Å. To remove the Ta film <b>9</b> of such a large thickness, high-energy ion milling must be performed. However, it is difficult to control the milling process to partly remove the Ta film <b>9</b>. The surface of the free magnetic layer <b>5</b> is often partly removed and suffers from damage due to the ion milling.
P-0358[0358] In the present invention, the thickness of the nonmagnetic layer <b>32</b> composed of Cr is approximately 2 to 10 Å, and 2 to 5 Å and still properly prevents the second antiferromagnetic layer <b>31</b> from being oxidized. Moreover, since low-energy ion milling is employed, it is easy to control the milling of the insulating layers <b>33</b> to stop partway.
P-0359[0359] Here, the term “low-energy ion milling” refers to ion milling employing ion beams having beam voltages (accelerating voltage) of less than 1,000 V. For example, beam voltages in the range of 100 to 500 V may be employed. In this embodiment, an Ar ion beam having a beam voltage of 200 V is used.
P-0360[0360] The time for milling is preferably approximately 20 to 40 seconds. The milling angle is 30 to 70 degrees, and more preferably 40 to 60 degrees with respect to an axis perpendicular to the surface of the substrate <b>20</b>. In this manner, the antiferromagnetic interaction between the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> can be intensified, and the magnitudes of the exchange coupling magnetic fields generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the two side portions C can be increased.
P-0361[0361] Next, the step shown in FIG. 23 is performed. In this step, the third antiferromagnetic layer <b>33</b> and the electrode layer <b>34</b> are sequentially deposited on each of the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> by sputtering or vapor deposition. The ends <b>33</b><i>a </i>of the third antiferromagnetic layers <b>33</b> and the ends <b>32</b><i>a </i>of the electrode layers <b>34</b> are formed as flat or curved slopes so that the gap between the third antiferromagnetic layers <b>33</b> and the gap between the electrode layers <b>34</b> gradually increases along the Z direction.
P-0362[0362] In this embodiment, the gap between the lower portions of the third antiferromagnetic layers <b>33</b> determines the track width Tw.
P-0363[0363] The third antiferromagnetic layer <b>33</b> is preferably composed of the same antiferromagnetic material as that of the second antiferromagnetic layer <b>31</b>.
P-0364[0364] In the step shown in FIG. 23, the sum of the thickness of each third antiferromagnetic layer <b>33</b> and the thickness of the second antiferromagnetic layer <b>31</b> is preferably 80 to 300 Å. The thickness of the third antiferromagnetic layers <b>33</b> is preferably adjusted accordingly. At such a thickness, the two side portions C of the second antiferromagnetic layer <b>31</b>, which alone do not exhibit antiferromagnetic properties, readily exhibit antiferromagnetic properties.
P-0365[0365] After the electrode layers <b>34</b> are formed as shown in FIG. 23, the resist layer <b>49</b> along with layers <b>33</b><i>c </i>and <b>34</b><i>b </i>deposited during the formation of the third antiferromagnetic layers <b>33</b> and the electrode layers <b>34</b>, respectively, is removed by lifting-off.
P-0366[0366] Next, a second field annealing is performed. This time, the magnetic field is applied in the track width direction (the X direction in the drawing). In the second field annealing, the applied magnetic field, i.e., the second magnetic field, is smaller than the exchange anisotropic magnetic field of the first antiferromagnetic layer <b>22</b>, and the annealing temperature is lower than the blocking temperature of the first antiferromagnetic layer <b>22</b>. The magnitude of the second magnetic field is preferably larger than the saturation magnetization field and the demagnetizing fields of the free magnetic layer <b>28</b>. In this manner, the exchange anisotropic magnetic field of the second antiferromagnetic layer <b>31</b> can be oriented in the track width direction (the X direction) without changing the direction of the exchange anisotropic magnetic field of the first antiferromagnetic layer <b>22</b>. The second annealing temperature is, for example 250° C., and the magnitude of the applied magnetic field is 24 kA/m.
P-0367[0367] Since the third antiferromagnetic layers <b>33</b> are formed on the two side portions C of the second antiferromagnetic layer <b>31</b> with the nonmagnetic layer <b>32</b> therebetween, the antiferromagnetic interaction between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> is intensified, and the two side portions C of the second antiferromagnetic layer <b>31</b>, which alone do not exhibit antiferromagnetic properties, exhibit antiferromagnetic properties.
P-0368[0368] As a result, the two side portions C of the second antiferromagnetic layer <b>31</b> properly transform into an ordered structure by the second field annealing, and exchange coupling magnetic fields of proper magnitudes are produced between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> at the two side portions C. Accordingly, the magnetization directions of the two side portions C of the free magnetic layer <b>28</b> are pinned in the track width direction (the X direction in the drawing).
P-0369[0369] The exchange coupling magnetic field is also generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the side portion C by the second field annealing. However, the exchange coupling magnetic field is small, if any, and does not pin the magnetization direction of the center portion D of the free magnetic layer <b>28</b> as firmly as in the two side portions C.
P-0370[0370] The center portion D of the free magnetic layer <b>28</b> is moderately put in a single-magnetic-domain state. The magnetization direction in the center portion D can rotate in response to external magnetic fields.
P-0371[0371] Chromium atoms of the nonmagnetic layer <b>32</b> also diffuse into the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> as a result of the second field annealing. Thus, the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b> after the second annealing contain chromium. The Cr concentration of the second antiferromagnetic layer <b>31</b> is higher in the upper part and lower in the bottom part. The Cr concentration of each third antiferromagnetic layer <b>33</b> is higher in the lower part and lower in the upper part. The Cr concentration in the second antiferromagnetic layer <b>31</b> gradually decreases along the direction opposite to the Z direction (the downward direction in the drawing). The Cr concentration in the third antiferromagnetic layer <b>33</b> gradually decreases along the Z direction (the upward direction in the drawing). Such a gradual change in concentration can be examined by a SIMS analyzer.
P-0372[0372] As the chromium atoms of the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b>, the PtMn alloy, the X—Mn alloy, or the Pt—Mn—X′ alloy constituting the second antiferromagnetic layer <b>31</b> transforms into an ordered structure.
P-0373[0373] Since the nonmagnetic layer <b>32</b> is deposited on the second antiferromagnetic layer <b>31</b> to protect the second antiferromagnetic layer <b>31</b>, the thickness hi of the second antiferromagnetic layer <b>31</b> can be decreased to a thickness in the range of 5 to 50 Å, for example, approximately 10 Å. As Cr atoms diffuse into the second antiferromagnetic layer <b>31</b> having such a small thickness, the region around the interface between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> rapidly transforms into an ordered structure, and the magnitude of the exchange coupling magnetic field at the interface can be increased.
P-0374[0374] Accordingly, in the resulting magnetic sensing element, the magnetization directions of the free magnetic layer <b>28</b> at the two side portions C can be firmly pinned by the two side portions C of the second antiferromagnetic layer <b>31</b>. Side reading can be reduced.
P-0375[0375] The crystal structure of the second antiferromagnetic layer <b>31</b> is, for example, of a CuAuI type. Chromium atoms diffusing from the nonmagnetic layer <b>32</b> partly replace the lattice points of the crystal lattice constituted from atoms of Pt and Mn, the crystal lattice constituted from atoms of X and Mn, or the crystal lattice constituted from atoms of Pt, Mn, and X′.
P-0376[0376] As described above, the magnetization direction of the free magnetic layer <b>28</b> can be properly controlled by employing the production method of the present invention. A magnetic sensing element having superior sensitivity compatible with narrower tracks can be produced.
P-0377[0377] A process for fabricating the magnetic sensing element shown in FIG. 2 will now be described. The magnetic sensing element is made through the steps shown in FIGS. <b>21</b> to <b>23</b>. During the step of ion milling shown in FIG. 22, the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> composed of Cr are completely removed. As is previously described, the thickness of the nonmagnetic layer <b>32</b> is so small that the nonmagnetic layer <b>32</b> can be milled by low-energy ion milling. Since the milling rate is low in the low-energy ion milling compared to high-energy ion milling, milling can be stopped immediately after the nonmagnetic layer <b>32</b> is completely removed. Thus, damage inflicted to the surface of the second antiferromagnetic layer <b>31</b> by milling can be minimized.
P-0378[0378] Since second antiferromagnetic layer <b>31</b> is not significantly affected by milling, the magnetic characteristics of the second antiferromagnetic layer <b>31</b> can be maintained at a satisfactory level.
P-0379[0379] The surface of the second antiferromagnetic layer <b>31</b> may be partly milled, as indicated by broken lines E in FIG. <b>2</b>. However, the surface of the second antiferromagnetic layer <b>31</b> is not significantly damaged. Thus, the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> can function as a single antiferromagnetic layer, and the two side portions C of the second antiferromagnetic layer <b>31</b> can properly exhibit antiferromagnetic properties. When subjected to second field annealing, the two side portions C of the second antiferromagnetic layer <b>31</b> transform into an ordered structure, and exchange coupling magnetic fields are generated between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> at the two side portions C. As a result the magnetization directions of the two side portions C of the free magnetic layer <b>28</b> can be pinned in the track width direction (the X direction).
P-0380[0380] The magnetic sensing element shown in FIG. 3 can be manufactured by performing the step shown in FIG. 21, forming the resist layer <b>49</b> in the step shown in FIG. 22, and performing the step shown in FIG. 23. In other words, no ion milling is performed during the step shown in FIG. 22.
P-0381[0381] In order to make the magnetic sensing element shown in FIG. 3, the thickness of the nonmagnetic layer <b>32</b> is adjusted to be 3 Å or less, and more preferably 1 Å or less, in the step shown in FIG. 21. Alternatively, the nonmagnetic layer <b>32</b> is deposited to a thickness of 2 to 10 Å, and more preferably 2 to 5 Å and is then milled to a thickness of 3 Å or less, and more preferably 1 Å or less by ion milling. The nonmagnetic layer <b>32</b> is preferably at least 0.2 Å in average thickness.
P-0382[0382] When the nonmagnetic layer <b>32</b> has a thickness of 3 Å or less, an antiferromagnetic interaction can be induced between the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. There is no need to completely remove or reduced to thickness of the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> by ion milling in the step shown in FIG. 22.
P-0383[0383] The nonmagnetic layer <b>32</b> constituted from the center portion <b>32</b><i>b </i>and the two side portions <b>32</b><i>a </i>of a uniform thickness can be formed through the steps described above.
P-0384[0384] When the free magnetic layer <b>28</b> having a structure shown in FIG. 16 or FIG. 18 is to be formed by this production method through steps shown in FIGS. <b>21</b> to <b>23</b>, an additional step of covering the third antiferromagnetic layers <b>33</b> and the electrode layers <b>34</b> with a resist layer and removing the exposed center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b>, the center portion of the second antiferromagnetic layer <b>31</b>, and the center portion of the magnetic sublayer <b>41</b> shown in FIG. 16 or the back sublayer <b>46</b> shown in FIG. 19 by ion milling or the like is provided.
P-0385[0385] The above description regards the methods for fabricating the CIP magnetic sensing elements shown in FIGS. <b>1</b> to <b>3</b>. Methods for fabricating the CPP magnetic sensing elements shown in FIGS. <b>7</b> to <b>9</b> will now be described. Only the steps different from those for fabricating the CIP magnetic sensing elements shown in FIGS. <b>1</b> to <b>3</b> will be described below.
P-0386[0386] First, the steps shown in FIGS. 21 and 22 are performed. Subsequently, in the step shown in FIG. 24, the third antiferromagnetic layers <b>33</b> are sputter-deposited on the two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b>. The sputtering is performed in the direction indicated by arrow N at a sputtering angle of θ<b>1</b> (an angle with respect to the axis parallel to the Z direction). The insulating layers <b>67</b> are then sputter-deposited over the upper face <b>33</b><i>b </i>and the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b>. This sputtering is performed in the direction indicated by arrow K at a sputtering angle of θ<b>2</b> (an angle with respect to the axis parallel to the Z direction).
P-0387[0387] The angles θ<b>1</b> and θ<b>2</b> may be the same or different. Preferably, the sputtering angle θ<b>2</b> is larger than the sputtering angle θ<b>1</b>. In this manner, the ends <b>67</b><i>a </i>can be extended over the two side ends of the center portion <b>32</b><i>b </i>of the nonmagnetic layer <b>32</b>. Preferably, the angles θ<b>1</b> and θ<b>2</b> are not zero.
P-0388[0388] A method for fabricating the magnetic sensing element shown in FIG. 10 will now be described. FIGS. <b>25</b> to <b>27</b> are partial cross-sectional views of the magnetic sensing element viewed from the opposing face showing the steps of the fabrication method.
P-0389[0389] In the step shown in FIG. 25, the seed layer <b>21</b>, the first antiferromagnetic layer <b>22</b>, the pinned magnetic layer <b>23</b>, the nonmagnetic material layer <b>27</b>, the free magnetic layer <b>28</b>, the second antiferromagnetic layer <b>31</b>, and the nonmagnetic layer <b>32</b> are sequentially deposited on the substrate <b>20</b> by sputtering or vapor deposition. The pinned magnetic layer <b>23</b> in FIG. 25 has a synthetic ferrimagnetic structure comprising the magnetic sublayers <b>24</b> and <b>26</b> composed of, for example, a CoFe alloy and the nonmagnetic interlayer <b>25</b> composed of, for example, Ru disposed between the magnetic sublayers <b>24</b> and <b>26</b>. The free magnetic layer <b>28</b> is constituted from the anti-diffusion sublayer <b>29</b> composed of, for example, a CoFe alloy and the magnetic material sublayer <b>30</b> composed of a NiFe alloy, for example.
P-0390[0390] The first antiferromagnetic layer <b>22</b> is preferably composed of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr.
P-0391[0391] The second antiferromagnetic layer <b>31</b> is preferably composed of a PtMn alloy, an X—Mn alloy, or a Pt—Mn—X′ alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, and X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Cr, Ni, Ar, Ne, Xe, and Kr.
P-0392[0392] The PtMn alloy and the X—Mn alloy preferably contain 37 to 63 at % of Pt and X, respectively. The PtMn alloy and the X—Mn alloy preferably contain 47 to 57 at % of Pt and X, respectively.
P-0393[0393] The Pt—Mn—X′ alloy preferably contains 37 to 63 at %, and, more preferably, 47 to 57 at % of X′+Pt. The Pt—Mn—X′ preferably contains 0.2 to 10 at % of X′. However, when the X′ is at least one of Pd, Ir, Rh, Ru, Os, Ni, and Fe, the X′ content is preferably in the range of 0.2 to 40 at %.
P-0394[0394] The thickness of the first antiferromagnetic layer <b>22</b> is preferably in the range of 80 to 300 Å. At such a thickness, a large exchange coupling magnetic field can be generated between the first antiferromagnetic layer <b>22</b> and the pinned magnetic layer <b>23</b> by field annealing. In particular, an exchange coupling magnetic field of 48 kA/m or more, for example, exceeding 64 kA/m can be generated.
P-0395[0395] The thickness of the second antiferromagnetic layer <b>31</b> is preferably in the range of 5 to 50 Å, more preferably, 10 to 50 Å, and most preferably 30 to 40 Å.
P-0396[0396] One of the features of the present invention is to form the second antiferromagnetic layer <b>31</b> at such a small thickness.
P-0397[0397] When the second antiferromagnetic layer <b>31</b> has a thickness of 50 Å or less, the second antiferromagnetic layer <b>31</b> exhibits nonantiferromagnetic properties. Thus, the second antiferromagnetic layer <b>31</b> rarely transforms into an ordered structure even after a first field annealing process described below. As a result, the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> is small, if any. The magnetization direction of the free magnetic layer <b>28</b> is not as firmly pinned as the pinned magnetic layer <b>23</b>.
P-0398[0398] The thickness of the second antiferromagnetic layer <b>31</b> is preferably at least 5 Å, and more preferably at least 10 Å. Otherwise, the two side portions C of the second antiferromagnetic layer <b>31</b> do not easily exhibit antiferromagnetic properties even after the third antiferromagnetic layers <b>33</b> are formed. As a result, an exchange coupling magnetic field having a proper magnitude cannot be generated between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> at the two side portions C.
P-0399[0399] Referring again to FIG. 25, the nonmagnetic layer <b>32</b> also prevents the second antiferromagnetic layer <b>31</b> from oxidation resulting from exposure of the composite film to air.
P-0400[0400] The nonmagnetic layer <b>32</b> is made of Cr. The nonmagnetic layer <b>32</b> composed of Cr is dense and is rarely oxidized in the thickness direction by exposure to air. Thus, the thickness of the nonmagnetic layer <b>32</b> need not be large to prevent the oxidization of the second antiferromagnetic layer <b>31</b>. The thickness of the nonmagnetic layer <b>32</b> is preferably 2 to 10 Å, and more preferably to 5 Å.
P-0401[0401] Another feature of the present invention is to form the nonmagnetic layer <b>32</b> with Cr at a small thickness such as approximately 2 to 10 Å. This allows performance of low energy ion milling, which is relatively easy to control, in the subsequent step.
P-0402[0402] Referring again to FIG. 25, after the layers up to the nonmagnetic layer <b>32</b> are deposited on the substrate <b>20</b>, first field annealing is performed. In particular, the layers are annealed at a first annealing temperature while applying a first magnetic field in a direction orthogonal to the track width direction, i.e., a first magnetic field in the Y direction orthogonal to the X direction. By the first field annealing, the exchange coupling magnetic field is generated between the first antiferromagnetic layer <b>22</b> and magnetic sublayer <b>24</b> of the pinned magnetic layer <b>23</b>, and the magnetic sublayer <b>24</b> is magnetized in the Y direction. The magnetic sublayer <b>26</b> is magnetized in a direction opposite to the Y direction by exchange coupling resulting from the RKKY interaction with the magnetic sublayer <b>24</b>. For example, the first annealing temperature is 270° C., and the magnitude of the applied magnetic field is 800 kA/m.
P-0403[0403] As described above, the second antiferromagnetic layer <b>31</b> rarely transforms into an ordered structure by the first field annealing since the thickness is small, and the magnitude of the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the magnetic material sublayer <b>30</b> is small, if any. This is because the second antiferromagnetic layer <b>31</b> has a small thickness of 50 Å or less and thus does not exhibit antiferromagnetic properties.
P-0404[0404] Chromium atoms constituting the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b> by the first field annealing. The region of the second antiferromagnetic layer <b>31</b> close to the interface with the nonmagnetic layer <b>32</b> thus contains Cr in addition to the material of the second antiferromagnetic layer <b>31</b>. The concentration of Cr is higher in the upper part of the second antiferromagnetic layer <b>31</b> than in the lower part of the second antiferromagnetic layer <b>31</b>. The Cr concentration gradually decreases toward the lower face of the second antiferromagnetic layer <b>31</b>. Such a gradual change in composition can be examined with a SIMS analyzer or the like.
P-0405[0405] Next, in the step shown in FIG. 25, the entire surface of the nonmagnetic layer <b>32</b> is partly milled with ions to the position indicated by broken line J.
P-0406[0406] The nonmagnetic layer <b>32</b> is partly milled for the following reasons. The thickness of the nonmagnetic layer <b>32</b> must be small in order to induce an antiferromagnetic interaction between the third antiferromagnetic layers <b>33</b> and the two side portions C of the second antiferromagnetic layer <b>31</b> in the subsequent step. Otherwise, the magnetization direction of the free magnetic layer <b>28</b> cannot be properly controlled.
P-0407[0407] The two side portions <b>32</b><i>a </i>of the nonmagnetic layer <b>32</b> are preferably milled to a thickness (average thickness) in the range of 0.2 to 3 Å, and more preferably 0.2 to 1.0 Å by ion milling. In this manner, an antiferromagnetic interaction can be induced between the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b>. As a result, the two side portions C of the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> can function as a single antiferromagnetic layer, and the two side portions C of the second antiferromagnetic layer <b>31</b> can exhibit antiferromagnetic properties.
P-0408[0408] In the ion milling step shown in FIG. 25, low-energy ion milling can be employed. This is because the nonmagnetic layer <b>32</b> after deposition has a small thickness of approximately 2 to 10 Å. Thus, milling of the nonmagnetic layer <b>32</b> can be stopped partway. In other words, milling can be more accurately controlled compared to conventional techniques.
P-0409[0409] Alternatively, the nonmagnetic layer <b>32</b> may be completely removed in the step shown in FIG. 25. Although no nonmagnetic layer <b>32</b> physically exists, chromium atoms are diffused in the second antiferromagnetic layer <b>31</b>. The Cr concentration increases toward the upper face of the second antiferromagnetic layer <b>31</b>.
P-0410[0410] Next, in the step shown in FIG. 26, the third antiferromagnetic layer <b>33</b> is formed on the nonmagnetic layer <b>32</b>, and the interlayer (protective layer) <b>35</b> composed of Ta or the like is sequentially formed on the third antiferromagnetic layer <b>33</b>. The interlayer <b>35</b> protects the third antiferromagnetic layer <b>33</b> from being oxidized by exposure to air.
P-0411[0411] Preferably, the third antiferromagnetic layer <b>33</b> and the second antiferromagnetic layer <b>31</b> are composed of the same material.
P-0412[0412] In the step shown in FIG. 26, the sum of the thickness of the third antiferromagnetic layer <b>33</b> and the thickness of the second antiferromagnetic layer <b>31</b> is preferably 80 to 300 Å. The thickness of the third antiferromagnetic layer <b>33</b> is preferably adjusted accordingly. At such a thickness, the second antiferromagnetic layer <b>31</b>, which alone does not exhibit antiferromagnetic properties, exhibits antiferromagnetic properties.
P-0413[0413] In the subsequent step shown in FIG. 27, a mask layer <b>50</b> composed of, for example, an inorganic material is formed on the interlayer <b>35</b>. The mask layer <b>50</b> has a predetermined void <b>50</b><i>a</i>. Examples of the inorganic material include Ta, Ti, Si, Zr, Nb, Cr, Mo, Hf, W, Al—O, Al—Si—O, and Si—O. In case the mask layer <b>50</b> is made of a metal, the mask layer <b>50</b> may be left to function as the electrode layers <b>34</b>.
P-0414[0414] The mask layer <b>50</b> may be prepared as follows. A resist layer (not shown) is disposed on the center portion of the interlayer <b>35</b>, and the two sides of the resist layer are filled with the material of the mask layer <b>50</b>. The resist layer is then removed so as to form the gap <b>50</b><i>a </i>of a predetermined with and the mask layer <b>50</b>. Alternatively, the mask layer <b>50</b> may be provided on the entire surface of the interlayer <b>35</b>, and a resist layer (not shown) may be formed on the mask layer <b>50</b>. A hole is formed at the center portion of the resist layer by exposure and development, and part of the mask layer <b>50</b> exposed at the hole is removed by reactive ion etching or the like so as to form the void <b>50</b><i>a. </i>
P-0415[0415] In the present invention, the mask layer <b>50</b> may be composed of a resist material.
P-0416[0416] In the step shown in FIG. 27, the interlayer <b>35</b> exposed at the void <b>50</b><i>a </i>in the mask layer <b>50</b>, and part of the third antiferromagnetic layer <b>33</b> is removed by reactive ion etching or ion milling. Milling is performed down to a position indicated by broken line K in the drawing. The milling is preferably performed until the sum of the thickness of the third antiferromagnetic layer <b>33</b> in the center portion D and the thickness of the second antiferromagnetic layer <b>31</b> reaches a thickness in the range of 5 to 50 Å, and more preferably 10 to 50 Å. Otherwise, the center portion D of the second antiferromagnetic layer <b>31</b> exhibits antiferromagnetic properties, an exchange coupling magnetic field is generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> at the center portion D, and the magnetization direction of the free magnetic layer <b>28</b> at the center portion D is firmly pinned in a certain direction.
P-0417[0417] When the third antiferromagnetic layer <b>33</b> is milled partway as indicated by broken line K in FIG. 27, the magnetic sensing element shown in FIG. 5 can be manufactured.
P-0418[0418] Alternatively, all of the third antiferromagnetic layer <b>33</b> exposed at the void <b>50</b><i>a </i>of the mask layer <b>50</b> may be removed, and the nonmagnetic layer <b>32</b> may be exposed at the void <b>50</b><i>a</i>. Here, the nonmagnetic layer <b>32</b> may be milled partway. When milling is stopped at the moment the nonmagnetic layer <b>32</b> is exposed at the void <b>50</b><i>a</i>, the magnetic sensing element shown in FIG. 4 is manufactured.
P-0419[0419] Alternatively, all of the nonmagnetic layer <b>32</b> exposed at the void <b>50</b><i>a </i>may be removed, and the second antiferromagnetic layer <b>31</b> may be milled partway until the position indicated by a single-dotted chain line L is reached. In this manner, the magnetic sensing element shown in FIG. 6 is manufactured.
P-0420[0420] As shown in FIG. 27, the third antiferromagnetic layer <b>33</b> is milled in a direction perpendicular to the surface of the substrate <b>20</b>. Thus, the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> are perpendicular to the surface of the substrate <b>20</b>. In other words, the ends <b>33</b><i>a </i>extend in the Z direction. In case the layers below the third antiferromagnetic layer <b>33</b> are milled, the ends of these layers are, as a matter of course, also perpendicular to the surface of the substrate <b>20</b>.
P-0421[0421] Note that in order to form ends <b>50</b><i>b </i>of the mask layer <b>50</b> as flat or curved slopes so that the gap between the ends <b>50</b><i>b </i>gradually increases along the Z direction (the upward direction), as indicated by broken lines M, the milling direction is shifted from the axis perpendicular to the surface of the substrate <b>20</b>. Since the gap between the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> gradually decreases toward the bottom, the track width Tw can be made smaller than the width of the void <b>50</b><i>a </i>in the mask layer <b>50</b>. Thus, a magnetic sensing element that can meet the demand for narrower tracks can be manufactured.
P-0422[0422] The second antiferromagnetic layer <b>31</b> may be milled until a desired position is reached. However, the thickness of the second antiferromagnetic layer <b>31</b> in the center portion D should be sufficiently small so as not to exhibit antiferromagnetic properties. Moreover, the free magnetic layer <b>28</b> must not be milled by reaction ion etching or ion milling because the magnetic characteristics of the free magnetic layer <b>28</b> will be degraded by damage inflicted by milling.
P-0423[0423] In the embodiment shown in FIG. 19, the magnetic sublayer <b>41</b> may be completely removed, and the nonmagnetic interlayer <b>40</b> may be milled partway. When the free magnetic layer <b>28</b> having the structure shown in FIG. 18 is employed, the back sublayer <b>46</b> may be milled partway.
P-0424[0424] Subsequent to the RIE or ion milling, a second field annealing is performed. This time, the magnetic field is applied in the track width direction (the X direction in the drawing). In the second field annealing, the applied magnetic field, i.e., the second magnetic field, is smaller than the exchange anisotropic magnetic field of the first antiferromagnetic layer <b>22</b>, and the annealing temperature is lower than the blocking temperature of the first antiferromagnetic layer <b>22</b>. The magnitude of the second magnetic field is preferably larger than the saturation magnetization field and the demagnetizing fields of the free magnetic layer <b>28</b>. In this manner, the exchange anisotropic magnetic field of the second antiferromagnetic layer <b>31</b> at the two side portions C can be oriented in the track width direction (the X direction) without changing the direction of the exchange anisotropic magnetic field of the first antiferromagnetic layer <b>22</b>. The second annealing temperature is, for example 250° C., and the magnitude of the applied magnetic field is 24 kA/m.
P-0425[0425] The two side portions C of the second antiferromagnetic layer <b>31</b> exhibit antiferromagnetic properties due to an antiferromagnetic interaction with the third antiferromagnetic layers <b>33</b> formed on the second antiferromagnetic layer <b>31</b>. By the second field annealing, the two side portions C of the second antiferromagnetic layer <b>31</b> transform into an ordered structure, and large exchange coupling magnetic fields are generated between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> at the two side portions C. As a result, the magnetization directions of the two side portions C of the free magnetic layer <b>28</b> are pinned in the track width direction (the X direction).
P-0426[0426] Since the antiferromagnetic layer disposed on the center portion D of the free magnetic layer <b>28</b> is thin and thus does not exhibit antiferromagnetic properties, the second antiferromagnetic layer <b>31</b> at the center portion D does not transform into an ordered structure by the second field annealing. Therefore, only a small exchange coupling magnetic field is generated, if any, between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> at the center portion D. The center portion D of the free magnetic layer <b>28</b> is not pinned as firmly as in the two side portions C.
P-0427[0427] The center portion D of the free magnetic layer <b>28</b> is only moderately put in a single-magnetic-domain state so that the magnetization direction thereof can rotate in response to external magnetic fields.
P-0428[0428] According to present invention described above, the magnetization direction of the free magnetic layer <b>28</b> can be properly controlled, and a magnetic sensing element having a high sensitivity even with narrow tracks can be manufactured.
P-0429[0429] Chromium atoms of the nonmagnetic layer <b>32</b> also diffuse into the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layers <b>33</b> as a result of the second field annealing. Thus, the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b> after the second annealing contain chromium. The Cr concentration of the second antiferromagnetic layer <b>31</b> is higher in the upper part and lower in the bottom part. The Cr concentration of each third antiferromagnetic layer <b>33</b> is higher in the lower part and lower in the upper part. The Cr concentration in the second antiferromagnetic layer <b>31</b> gradually decreases along the direction opposite to the Z direction (the downward direction in the drawing). The Cr concentration in the third antiferromagnetic layer <b>33</b> gradually decreases along the Z direction (the upward direction in the drawing). Such a gradual change in concentration can be examined by a SIMS analyzer.
P-0430[0430] As the chromium atoms of the nonmagnetic layer <b>32</b> diffuse into the second antiferromagnetic layer <b>31</b>, the PtMn alloy, the X—Mn alloy, or the Pt—Mn—X′ alloy constituting the second antiferromagnetic layer <b>31</b> rapidly transforms into an ordered structure.
P-0431[0431] Since the nonmagnetic layer <b>32</b> is deposited on the second antiferromagnetic layer <b>31</b> to protect the second antiferromagnetic layer <b>31</b>, the thickness h1 of the second antiferromagnetic layer <b>31</b> can be decreased to a thickness in the range of 5 to 50 Å, for example, approximately 10 Å. As Cr atoms diffuse into the second antiferromagnetic layer <b>31</b> having such a small thickness, the region around the interface between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> rapidly transforms into an ordered structure, and the magnitude of the exchange coupling magnetic field at the interface can be increased.
P-0432[0432] Accordingly, in the resulting magnetic sensing element, the magnetization directions of the free magnetic layer <b>28</b> at the two side portions C can be firmly pinned by the two side portions C of the second antiferromagnetic layer <b>31</b>. Side reading can be reduced.
P-0433[0433] The crystal structure of the second antiferromagnetic layer <b>31</b> is, for example, of a CuAuI type. Chromium atoms diffusing from the nonmagnetic layer <b>32</b> partly replace the lattice points of the crystal lattice constituted from atoms of Pt and Mn, the crystal lattice constituted from atoms of X and Mn, or the crystal lattice constituted from atoms of Pt, Mn, and X′.
P-0434[0434] The second field annealing may be performed after the step shown in FIG. 26, i.e., the step of forming the third antiferromagnetic layer <b>33</b> and the interlayer <b>35</b> on the nonmagnetic layer <b>32</b>. Since the second antiferromagnetic layer <b>31</b> exhibits antiferromagnetic properties because of the third antiferromagnetic layers <b>33</b> thereon, the second antiferromagnetic layer <b>31</b> transforms to an ordered structure by the second field annealing. As a result, a large exchange coupling magnetic field is generated between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> and pins the magnetization direction of the free magnetic layer <b>28</b> in the track width direction. However, since the center portion D of the third antiferromagnetic layer <b>33</b> and the second antiferromagnetic layer <b>31</b> are milled in the step shown in FIG. 27, the exchange coupling magnetic field between the free magnetic layer <b>28</b> and the center portion D of the second antiferromagnetic layer <b>31</b> weakens. Accordingly, the magnetization direction of the center portion D of the free magnetic layer <b>28</b> is moderately oriented so as to be responsive to external magnetic fields.
P-0435[0435]FIG. 28 is an enlarged partial cross-sectional view from the opposing face. FIG. 28 shows a step of fabricating the electrode layer <b>34</b>.
P-0436[0436] When the mask layer <b>50</b> shown in FIG. 27 is composed of a resist material and thus cannot be used as an electrode, the electrode layer <b>34</b> must be formed on each third antiferromagnetic layer <b>33</b> after the removal of the mask layer <b>50</b>.
P-0437[0437] As shown in FIG. 28, a resist layer <b>51</b> is formed in the void <b>50</b><i>a </i>in the third antiferromagnetic layer <b>33</b> over part of the upper faces of the third antiferromagnetic layers <b>33</b>. Alternatively, the resist layer <b>51</b> may be formed only inside the void <b>50</b><i>a</i>. The electrode layers <b>34</b> are deposited on part of the third antiferromagnetic layers <b>33</b> not covered by the resist layer <b>51</b>. Subsequently, the resist layer <b>51</b> is removed.
P-0438[0438] The above description regards the method for fabricating the CIP magnetic sensing elements shown in FIGS. <b>4</b> to <b>6</b>. Methods for fabricating the CPP magnetic sensing elements shown in FIGS. 11 and 12 will now be described. Only the steps different from those for fabricating the magnetic sensing elements shown in FIGS. <b>4</b> to <b>6</b> are described below.
P-0439[0439] After the step shown in FIG. 25, the first insulating layer <b>70</b> is sequentially sputter-deposited on the third antiferromagnetic layer <b>33</b> in the step shown in FIG. 26.
P-0440[0440] As shown in FIG. 29, a resist layer <b>80</b> having a void <b>80</b><i>a </i>at the center in the track width direction (the X direction) is formed on the first insulating layer <b>70</b> by exposure and development.
P-0441[0441] Part of the first insulating layer <b>70</b> and the third antiferromagnetic layer <b>33</b> not covered with the base layer <b>80</b> is milled in the direction indicated by arrows O by ion milling or reactive ion etching (RIE) so as to remove the layers indicated by broken lines in FIG. 29. How far the milling is performed determines which of the embodiments shown in FIGS. <b>10</b> to <b>12</b> is made.
P-0442[0442] Alternatively, the first insulating layer <b>70</b> may be formed on each of the two side portions C of the third antiferromagnetic layer <b>33</b>, and the exposed center portion D of the third antiferromagnetic layer <b>33</b> may be milled using the first insulating layers <b>70</b> as a mask.
P-0443[0443] Although the ends <b>80</b><i>b </i>of the resist layer <b>80</b> shown in FIG. 29 are perpendicular to the surface of the substrate <b>20</b>, the ends <b>80</b>B may be flat or curved slopes. The beam incident angle of the ion milling may be shifted from the axis normal to the substrate surface. In these cases, the ends <b>33</b><i>a </i>of the third antiferromagnetic layers <b>33</b> are formed as flat or curved slopes. Subsequently, the resist layer <b>80</b> is removed.
P-0444[0444] In the step shown in FIG. 30, the second insulating layer <b>71</b> is formed over the first insulating layers <b>70</b>, the ends of the third antiferromagnetic layers <b>33</b>, and the center portion D of the magnetic sensing element. The second insulating layer <b>71</b> is formed by sputter-depositing an insulating material such as Al<sub>2</sub>O<sub>3</sub>, SiO<sub>2</sub>, AlN, Al—Si—O—N, Al—Si—O, Ti<sub>2</sub>O<sub>3</sub>, Ti<sub>3</sub>O<sub>5</sub>, or Ta<sub>2</sub>O<sub>5</sub>. Ion beam sputtering, long through sputtering, collimation sputtering, or the like may be employed.
P-0445[0445] The sputtering angle θ<b>3</b> (an angle with respect to the axis in the Z direction) for forming the second insulating layer <b>71</b> is important. As shown in FIG. 30, the sputtering direction P has the sputtering angle of θ<b>3</b> with respect to the direction perpendicular to the surface of each layer constituting the composite film. In the present invention, the sputtering angle θ<b>3</b> is preferably as large as possible so that the second insulating layer <b>71</b> can be formed on the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b>. For example, the sputtering angle θ<b>3</b> is 50 to 70 degrees.
P-0446[0446] At a large sputtering angle θ<b>3</b>, the thickness T3 of the second insulating layer <b>71</b> on the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> in the track width direction (the X direction) can become larger than the thickness T4 of the second insulating layer <b>71</b> on the upper face of the magnetic sensing-element and the first insulating layers <b>70</b>. If the thickness of the second insulating layer <b>71</b> is not adjusted as above, the second insulating layer <b>71</b> on the ends <b>33</b><i>a </i>of the third antiferromagnetic layers <b>33</b> will be completely removed in the subsequent ion milling step. Even when the second insulating layer <b>71</b> remains on the ends <b>33</b><i>a </i>of the third antiferromagnetic layers <b>33</b>, the thickness thereof is so small that the second insulating layer <b>71</b> no longer functions as an insulating layer for decreasing the shunt loss.
P-0447[0447] Next, as shown in FIG. 30, ion milling is performed in direction Q perpendicular or substantially perpendicular to the surface of each layer of the composite film (in the Z direction). The milling angle is approximately 0 to 20 degrees with respect to the surface of each layer of the composite film. The ion milling is performed until the second insulating layer <b>71</b> formed on the center portion D is properly removed. As a result, the second insulating layer <b>71</b> formed on the upper faces <b>33</b><i>b </i>of the third antiferromagnetic layers <b>33</b> are also removed. On the other hand, the second insulating layer <b>71</b> on the ends <b>33</b><i>a </i>of the third antiferromagnetic layers <b>33</b> remains even after the ion milling. This is because the thickness T3 of the second insulating layer <b>71</b> on the ends <b>33</b><i>a </i>is larger than that on the center portion D of the magnetic sensing element, and ion milling in the milling direction Q does not mill the second insulating layer <b>71</b> on the ends <b>33</b><i>a </i>as much as the second insulating layer <b>71</b> at the center portion D of the magnetic sensing element. Thus, the second insulating layers <b>71</b> having a proper thickness can be formed on the ends <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b>.
P-0448[0448] Such a state is shown in FIG. 31. The thickness T3 of the second insulating layer <b>71</b> on the end <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> in the track width direction is approximately 5 to 10 nm.
P-0449[0449] As shown in FIG. 31, the upper face <b>33</b><i>b </i>of each third antiferromagnetic layer <b>33</b> is covered by the first insulating layer <b>70</b>, and each end <b>33</b><i>a </i>of the third antiferromagnetic layer <b>33</b> is covered by the second insulating layer <b>71</b>. If necessary, the nonmagnetic layer <b>69</b> shown in FIG. 10 may be provided over the first insulating layers <b>70</b>, the second insulating layers <b>71</b>, and the center portion D of the magnetic sensing element, and the upper shield layer <b>68</b>, which functions as an upper electrode, may then be formed by plating.
P-0450[0450] According to this method, a CPP magnetic sensing element that can properly decrease the shunt loss from the current supplied from the shield layers can be obtained.
P-0451[0451] In the magnetic sensing elements shown in FIGS. 13 and 14, the protrusion <b>65</b><i>a </i>is formed in the lower shield layer <b>65</b>, and the insulating layers <b>78</b> are formed between the seed layer <b>21</b> and the two side portions <b>65</b><i>b </i>of the lower shield layer <b>65</b>. First, the lower shield layer <b>65</b> is formed by plating, sputtering, or the like, and is planarized by polishing. A resist layer is then formed on the center portion of the lower shield layer <b>65</b> in the track width direction, and the two side portions <b>65</b><i>b </i>of the lower shield layer <b>65</b> is milled partway by ion milling. Thus, the protrusion <b>65</b><i>a </i>is formed at the center of the lower shield layer <b>65</b> in the track width direction.
P-0452[0452] Next, the insulating layers <b>78</b> are formed by sputtering on the two side portions <b>65</b><i>b </i>of the lower shield layer <b>65</b> not covered by the resist layer. This sputter deposition is stopped when the upper faces of the insulating layers <b>78</b> become flush with the upper face <b>65</b><i>a</i><b>1</b> of the protrusion <b>65</b><i>a</i>. After the resist layer is removed, the upper face <b>65</b><i>a</i><b>1</b> of the protrusion <b>65</b><i>a </i>and the upper faces of the insulating layers <b>78</b> may be polished by chemical mechanical polishing so as to provide highly planarized surface. In such a case, the first polishing process is not necessary.
P-0453[0453] The second antiferromagnetic layer <b>31</b> above may be composed of a Cr-containing PtMn alloy, a Cr-containing X—Mn alloy, wherein X is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Os, Ni, and Fe, or a Cr-containing Pt—Mn—X′ alloy, wherein X′ is at least one element selected from the group consisting of Pd, Ir, Rh, Ru, Au, Ag, Os, Ni, Ar, Ne, Xe, and Kr.
P-0454[0454] When the second antiferromagnetic layer <b>31</b> is composed of a PtMnCr alloy, X—Mn—Cr alloy, or a Pt—Mn—X′—Cr alloy, the thickness of the second antiferromagnetic layer <b>31</b> is adjusted in the range of 5 to 30 Å so as to prevent the second antiferromagnetic layer <b>31</b> from transforming into an ordered structure prior to the formation of the third antiferromagnetic layer <b>33</b>.
P-0455[0455] Although the nonmagnetic layer <b>32</b> above is made of Cr, the nonmagnetic layer <b>32</b> may be made of at least one of Ti, Zr, Hf, V, Nb, Al, Si, Mo, W, Y, and rare earth elements.
P-0456[0456] In fabricating a magnetic head using the CIP magnetic sensing element described above, an underlayer composed of an insulating material such as alumina is provided between the substrate <b>20</b> and the seed layer <b>21</b>, a lower shield layer composed of a magnetic alloy is deposited on the underlayer, and a lower gap layer composed of an insulating material is deposited on the lower shield layer. The magnetic sensing element is then formed on the lower gap layer. An upper gap layer composed of an insulating material is then formed on the magnetic sensing element, and an upper shield layer composed of a magnetic alloy is formed on the upper gap layer. Optionally, an inductive write head may be formed on the upper shield layer.
P-0457[0457] The magnetic sensing element of the present invention can be incorporated into a magnetic sensor as well as a magnetic head installed in a hard disk device.
EXAMPLES
P-0458[0458] Experiments were conducted to demonstrate that the magnitude of the exchange coupling magnetic field between the second antiferromagnetic layer <b>31</b> and the free magnetic layer <b>28</b> increases by field-annealing the composite film having the chromium nonmagnetic layer <b>32</b> disposed between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b>.
P-0459[0459]FIG. 32 is a graph showing the relationship between the exchange coupling magnetic field and the thickness of the chromium layer inserted at a position 5 Å away from the interface between the ferromagnetic layer and the antiferromagnetic layer.
P-0460[0460] This experiment was conducted to show the effect of changes in thickness of the nonmagnetic layer <b>32</b> between the second antiferromagnetic layer <b>31</b> having a thickness of 5 Å and the third antiferromagnetic layer <b>33</b> on the exchange coupling magnetic field (Hex) between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b>.
P-0461[0461] The thickness of the Cr layer was in terms of the average thickness. The average thickness can be determined by, for example, X-ray fluorescence analysis.
P-0462[0462] The average thickness of the Cr layer is sometimes less than 1 Å. As is widely known, no uniform thin film has a thickness of less than 1 Å since 1 Å corresponds to the diameter of one atom or less. However, in a nonuniform thin film containing unevenly distributed Cr atoms, there exist regions with chromium atoms and regions without any chromium atoms. Accordingly, the average thickness of the chromium layer is sometimes less than 1 Å.
P-0463[0463] In the experiment, the layer structure of the composite film was as follows: silicon substrate/alumina (1,000 Å)/(Ni<sub>0.8</sub>Fe<sub>0.2</sub>)<sub>60</sub>Cr<sub>40 </sub>(55 Å)/Pt<sub>50</sub>Mn<sub>50 </sub>(150 Å)/Pt<sub>50</sub>Mn<sub>50 </sub>(5−X/2 Å)/Cr (x Å)/Pt<sub>50</sub>Mn<sub>50 </sub>(5−X/2 Å)/Co<sub>90</sub>Fe<sub>10 </sub>(16 Å)/Ta (30 Å).
P-0464[0464] The composite film was annealed at 290° C. for 4 hours while applying a magnetic field of 800 kA/m.
P-0465[0465] The exchange coupling magnetic field Hex without the Cr layer in the antiferromagnetic layer was 93 kA/m.
P-0466[0466] The Cr layer was positioned in the antiferromagnetic layer 5 Å away from the interface between the antiferromagnetic layer and the pinned magnetic layer. The exchange coupling magnetic field Hex between the antiferromagnetic layer (Pt<sub>50</sub>Mn<sub>50</sub>) and the ferromagnetic layer (Co<sub>90</sub>Fe<sub>10</sub>) was 152 to 160 kA/m when the thickness of the Cr layer was in the range of 0.2 to 1.0 Å.
P-0467[0467] Next, the Cr layer having a thickness of 0.2 Å was disposed at various positions in the antiferromagnetic layer. The resulting exchange coupled film was annealed, and the exchange coupling energy Jk after annealing was examined.
P-0468[0468] This experiment was conducted to examine the effect on the exchange coupling energy Jk between the free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> when the nonmagnetic layer <b>32</b> having a thickness of 0.2 Å was disposed between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b> and when the thickness of the second antiferromagnetic layer <b>31</b> was varied.
P-0469[0469] The layer structure of the composite film used in the experiment is shown below. The Cr layer is omitted.
P-0470[0470] The composite film: silicon substrate/alumina (1,000 Å)/ (Ni<sub>0.8</sub>Fe<sub>0.2</sub>)<sub>60</sub>Cr<sub>40 </sub>(55 Å)/Pt<sub>50</sub>Mn<sub>50 </sub>(160 Å)/Co<sub>90</sub>Fe<sub>10 </sub>(16 Å)/Ta (30 Å).
P-0471[0471] The composite film was annealed at 290° C. for 4 hours while applying a magnetic field of 800 kA/m.
P-0472[0472] The results are shown in FIG. 33. The abscissa axis indicates the position where the Cr layer is disposed. In the graph shown in FIG. 33, the position at the interface between the antiferromagnetic layer (Pt<sub>50</sub>Mn<sub>50</sub>) and the ferromagnetic layer (Co<sub>90</sub>Fe<sub>10</sub>) is assumed as a zero distance. The negative distance is indicated when the Cr layer is in the antiferromagnetic layer. For example, the position of the Cr layer is −5 Å when the Cr layer is provided in the antiferromagnetic layer at a position 5 Å away from the interface. In this experiment, the distance from the interface to the Cr layer corresponded to the thickness of the second antiferromagnetic layer <b>31</b> in the magnetic sensing element of the present invention.
P-0473[0473] The exchange coupling energy Jk between the antiferromagnetic layer and the pinned magnetic layer without Cr layer in the antiferromagnetic layer was 0.222 mJ/m<sup>2 </sup>after annealing.
P-0474[0474] When the Cr layer in the antiferromagnetic layer was 5 Å away from the interface, i.e., when the second antiferromagnetic layer <b>31</b> had a thickness of 5 Å, the exchange coupling energy Jk was 0.370 mJ/m<sup>2</sup>. When the Cr layer in the antiferromagnetic layer was 10 Å away from the interface, the exchange coupling energy Jk was 0.330 mJ/m<sup>2</sup>. When the Cr layer in the antiferromagnetic layer was 20 Å away from the interface, the exchange coupling energy Jk was 0.245 mJ/m<sup>2</sup>. Even when the Cr layer in the antiferromagnetic layer was more than 20 Å away from the interface, the exchange coupling energy Jk did not decrease significantly.
P-0475[0475]FIG. 34 is a graph plotted by converting the abscissa axis of the graph in FIG. 33 in terms of the exchange coupling magnetic field (Hex) between the ferromagnetic layer and the antiferromagnetic layer.
P-0476[0476] The curve in FIG. 34 indicating changes in exchange coupling magnetic field (Hex) versus the position of the Cr layer was substantially identical to the curve in FIG. 33 indicating the exchange coupling energy Jk.
P-0477[0477] The results described above fully demonstrate that an exchange coupled film including a Cr layer in an antiferromagnetic layer generates a larger exchange coupling energy Jk than an exchange coupled film without any Cr layer.
P-0478[0478] In other words, when the Cr nonmagnetic layer <b>32</b> is provided between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b>, the exchange coupling magnetic field and the exchange coupling energy Jk with the free magnetic layer <b>28</b> increase.
P-0479[0479]FIG. 35 is a graph indicating the unidirectional exchange bias magnetic field (Hex*) of an exchange coupled film after annealing when a Cr layer 0.2 Å in thickness was disposed at various positions in an antiferromagnetic layer. The exchange coupled film used in the experiment was prepared by laminating the antiferromagnetic layer with a ferromagnetic layer constituted from first and second magnetic sublayers and a nonmagnetic interlayer disposed between the first and second magnetic sublayers.
P-0480[0480] This experiment was conducted to examine the effect of the thickness of the second antiferromagnetic layer <b>31</b> on the unidirectional exchange bias magnetic field (Hex*) between the synthetic ferrimagnetic free magnetic layer <b>28</b> and the second antiferromagnetic layer <b>31</b> when the nonmagnetic layer <b>32</b> 0.2 Å in thickness was provided between the second antiferromagnetic layer <b>31</b> and the third antiferromagnetic layer <b>33</b>.
P-0481[0481] The layer structure of the composite film used in the experiment is shown below. The Cr layer is omitted.
P-0482[0482] The composite film: silicon substrate/alumina (1,000 Å)/(Ni<sub>0.8</sub>Fe<sub>0.2</sub>)<sub>60</sub>Cr<sub>40 </sub>(52 Å)/Pt<sub>50</sub>Mn<sub>50 </sub>(120 Å)/Co<sub>90</sub>Fe<sub>10 </sub>(16 Å)/Ru/Co<sub>90</sub>Fe<sub>10 </sub>(22 Å)/Ta (30 Å).
P-0483[0483] The composite film was annealed at 290° C. for 4 hours while applying a magnetic field of 800 kA/m.
P-0484[0484] The abscissa axis in FIG. 35 indicates the position where the Cr layer is provided. In the graph shown in FIG. 35, the position at the interface between the antiferromagnetic layer and the ferromagnetic layer is assumed as a zero distance. The negative distance is indicated when the Cr layer is in the antiferromagnetic layer. For example, the position of the Cr layer is −5 Å when the Cr layer is provided in the antiferromagnetic layer at a position 5 Å away from the interface.
P-0485[0485] The experiment demonstrated that the exchange-coupled film including the Cr layer in the antiferromagnetic layer exhibited a unidirectional exchange bias magnetic field (Hex*) in the range of 148 to 152 kA/m regardless of the position of the Cr layer.
P-0486[0486] In view of the above, stable unidirectional exchange coupling magnetic fields (Hex*) can be generated using the synthetic ferrimagnetic free magnetic layer even when the thickness of the second antiferromagnetic layer <b>31</b> is changed.
Contents5
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Numbers
- Application
- 42258503
Titles
- English
- Magnetic sensing element
Patent term adjustment
- A delay
- +142 daysthe office missed an examination deadline
- Net adjustment
- 142 days
Classification
- CPC, 9
- B82Y25/00
- G01R33/093
- B82Y10/00
- G11B5/3113
- G11B5/3903
- G11B5/3909
- G11B5/3932
- G11B2005/0008
- G11B2005/3996
- IPC, 8
- G01R33 09
- G11B5 00
- G11B5 31
- G11B5 39
- H01F10 32
- H01F41 14
- H10N50 01
- H10N50 10