Liquid crystal display
Claim Score by NHIP
Abstract
Provided is a liquid crystal display including an array substrate with first to third comb-shaped electrodes on a main surface thereof, a counter substrate with a common electrode that faces the first to third comb-shaped electrodes on a main surface thereof, a liquid crystal layer sandwiched between the array and counter substrates, and a color filter supported by one of the array and counter substrates and including first to third coloring layer facing the first to third comb-shaped electrodes, respectively, wherein the first comb-shaped electrode is different in shape and/or orientation from the second and third comb-shaped electrodes.

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Projected expiry passed 18 April 2023, 3.4 years ago.
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20 claims: 3 independent, 17 dependent
- 1A liquid crystal display, comprising:an array substrate with first to third pixel electrodes on a main surface thereof;a counter substrate with a common electrode that faces the first to third pixel electrodes on a main surface thereof;a liquid crystal layer sandwiched between the array and counter substrates;and a color filter supported by one of the array and counter substrates and comprising first to third coloring layer facing the first to third pixel electrodes, respectively, wherein the display is configured to form first and second optical regions different from each other in electric field intensity in each of first to third pixel regions between the common electrode and the first to third pixel electrodes when voltage is applied therebetween, the first and second optical regions extending in a direction that is parallel to the liquid crystal layer and alternately arranged in a direction that crosses a longitudinal direction of the first optical region in each of the first to third pixel regions, and the first pixel region being different in the longitudinal direction of the first optical region from the second and third pixel regions.
- 10A liquid crystal display, comprising:an array substrate with first to third pixel electrodes on a main surface thereof;a counter substrate with a common electrode that faces the first to third pixel electrodes on a main surface thereof;a liquid crystal layer sandwiched between the array and counter substrates;and a color filter supported by one of the array and counter substrates and comprising first to third coloring layer facing the first to third pixel electrodes, respectively, wherein the display is configured to form first and second optical regions different from each other in electric field intensity in each of first to third pixel regions between the common electrode and the first to third pixel electrodes when voltage is applied therebetween, the first and second optical regions extending in a direction that is parallel to the liquid crystal layer and alternately arranged in a direction that crosses a longitudinal direction of the first optical region in each of the first to third pixel regions, and wherein the first pixel region is different in a shape of the first and/or second optical region from the second and third pixel regions.
- 20Broadest claimClaim Score 61, broad(NHIP)A liquid crystal display, comprising:an array substrate with first to third comb-shaped electrodes on a main surface thereof;a counter substrate with a common electrode that faces the first to third comb-shaped electrodes on a main surface thereof;a liquid crystal layer sandwiched between the array and counter substrates;and a color filter supported by one of the array and counter substrates and comprising first to third coloring layer facing the first to third comb-shaped electrodes, respectively, wherein the first comb-shaped electrode is different in shape and/or orientation from the second and third comb-shaped electrodes.
Independent claims3
131 paragraphs in 9 sections, as filed
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is based upon and claims the benefit of priority from the prior Japanese Patent Applications No. 2002-118137, filed Apr. 19, 2002; and No. 2002-126328, filed Apr. 26, 2002, the entire contents of both of which are incorporated herein by reference.
BACKGROUND OF THE INVENTION
[0002] 1. Field of the Invention
[0003] The present invention relates to a liquid crystal display.
[0004] 2. Description of the Related Art
[0005] A liquid crystal display, which is thin, light in weight and low in power consumption, is used is various fields such as OA equipment, an information terminal, a watch and a television receiver. Particularly, a liquid crystal display equipped with a thin film transistor (TFT) exhibits a high response capability and, thus, is used as a monitor of an apparatus that displays a large amount of information, such as a portable television receiver or a portable computer.
[0006] In recent years, demands for a picture image of high definition and short response time are being increased, in parallel with the increase amount of information. Of the above, high definition images are accomplished by, for example, miniaturization of the array structure forming the TFT.
[0007] On the other hand, concerning the demand for the shortening of the response time, it is being studied to employ the display mode using a nematic liquid crystal, such as an IPS mode, an HAN mode, an OCB mode, a π-mode and a multi domain-type VAN (Vertical Aligned Nematic) mode, or the display mode using a smectic liquid crystal, such as a surface stabilized ferroelectric liquid crystal mode and an antiferroelectric liquid crystal mode, in place of the conventional display mode.
[0008] Among these display modes, the multi domain-type VAN mode permits obtaining a response speed higher than that in the conventional TN (Twisted Nematic) mode. Also, a rubbing treatment that generates undesired phenomena such as an electrostatic destroy is not required in the multi domain-type VAN mode because the liquid crystal molecules are oriented in the vertical direction in the multi domain-type VAN mode. Further, the design for the compensation of the viewing angle can be achieved relatively easily in the multi domain-type VAN mode.
[0009] However, the viewing angle for the multi domain-type VAN mode is smaller than that for the IPS mode. Naturally, it is desirable to further broaden the viewing angle in the multi domain-type VAN mode.
BRIEF SUMMARY OF THE INVENTION
[0010] According to a first aspect of the present invention, there is provided a liquid crystal display, comprising an array substrate with first to third pixel electrodes on a main surface thereof, a counter substrate with a common electrode that faces the first to third pixel electrodes on a main surface thereof, a liquid crystal layer sandwiched between the array and counter substrates, and a color filter supported by one of the array and counter substrates and comprising first to third coloring layer facing the first to third pixel electrodes, respectively, wherein the display is configured to form first and second optical regions different from each other in electric field intensity in each of first to third pixel regions between the common electrode and the first to third pixel electrodes when voltage is applied therebetween, the first and second optical regions extending in a direction that is parallel to the liquid crystal layer and alternately arranged in a direction that crosses a longitudinal direction of the first optical region in each of the first to third pixel regions, and the first pixel region being different in the longitudinal direction of the first optical region from the second and third pixel regions.
[0011] According to a second aspect of the present invention, there is provided a liquid crystal display, comprising an array substrate with first to third pixel electrodes on a main surface thereof, a counter substrate with a common electrode that faces the first to third pixel electrodes on a main surface thereof, a liquid crystal layer sandwiched between the array and counter substrates, and a color filter supported by one of the array and counter substrates and comprising first to third coloring layer facing the first to third pixel electrodes, respectively, wherein the display is configured to form first and second optical regions different from each other in electric field intensity in each of first to third pixel regions between the common electrode and the first to third pixel electrodes when voltage is applied therebetween, the first and second optical regions extending in a direction that is parallel to the liquid crystal layer and alternately arranged in a direction that crosses a longitudinal direction of the first optical region in each of the first to third pixel regions, and wherein the first pixel region is different in a shape of the first and/or second optical region from the second and third pixel regions.
[0012] According to a third aspect of the present invention, there is provided a liquid crystal display, comprising an array substrate with first to third comb-shaped electrodes on a main surface thereof, a counter substrate with a common electrode that faces the first to third comb-shaped electrodes on a main surface thereof, a liquid crystal layer sandwiched between the array and counter substrates, and a color filter supported by one of the array and counter substrates and comprising first to third coloring layer facing the first to third comb-shaped electrodes, respectively, wherein the first comb-shaped electrode is different in shape and/or orientation from the second and third comb-shaped electrodes.
[0013] Where voltage is applied between the pixel electrode and the common electrode under the state that polarizers are arranged on the sides of the light source and the observer, the first optical region and the second optical region can be observed as regions differing from each other in the transmittance or the reflectance. In other words, the first and second optical regions can be confirmed by actually measuring the intensity of the electric field and/or by examining the transmittance or the reflectance.
[0014] It is not absolutely necessary for a clear boundary to be present between the first optical region and the second optical region. In other words, it is possible for the intensity of the electric field and the magnitudes of the transmittance or the reflectance to be changed continuously in the arranging direction of the first optical region and the second optical region.
[0015] Where a clear boundary is not formed between the first optical region and the second optical region, the sum of the width of the first optical region and the width of the second optical region is scarcely dependent on a boundary value, which is a value defining the boundary between the first and the second optical regions. However, the individual widths of the first and second optical regions are dependent on the boundary value. It follows that, where it is necessary to obtain the boundary between the first optical region and the second optical region, an appropriate value such as an average value of the electric field intensity, the transmittance or the reflectance can be used as the boundary value.
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0016]FIG. 1 is a cross sectional view schematically showing the construction of a liquid crystal display according to a first embodiment of the present invention;
[0017]FIG. 2 is a plan view schematically exemplifying a construction that can be utilized in the liquid crystal display shown in FIG. 1;
[0018]FIGS. 3A to <b>3</b>D schematically show the change in the orientation of the liquid crystal molecules that can be generated in the case of employing the structure shown in FIG. 2 in the liquid crystal display shown in FIG. 1;
[0019]FIG. 4 is a plan view schematically exemplifying the construction of a pixel electrode that can be utilized in the liquid crystal display shown in FIG. 1;
[0020]FIG. 5 is a plan view schematically exemplifying the construction of a pixel electrode that can be utilized in the liquid crystal display according to a second embodiment of the present invention;
[0021]FIG. 6 exemplifies the distribution of the transmittance that is observed in the case of employing the construction shown in FIG. 2 in the liquid crystal display shown in FIG. 1;
[0022]FIG. 7 is a plan view schematically exemplifying the construction that can be employed in the liquid crystal display shown in FIG. 1;
[0023]FIG. 8 schematically shows the change in orientation of the liquid crystal molecules that can be generated in the case of employing the construction shown in FIG. 7 in the liquid crystal display shown in FIG. 1;
[0024]FIGS. 9A and 9B are cross sectional views each exemplifying the construction that can be employed in the liquid crystal display shown in FIG. 1;
[0025]FIG. 10 is a cross sectional view schematically showing the construction of a part of the active matrix substrate included in the liquid crystal display shown in FIG. 1;
[0026]FIG. 11 is an equivalent circuit diagram of the liquid crystal display for Example 1 of the present invention;
[0027]FIG. 12 is a graph exemplifying the relationship between the width of a slit formed in the pixel electrode, and the transmittance; and
[0028]FIG. 13 is a graph showing the influence of the wavelength on the relationship between the width of a slit formed in the pixel electrode, and the transmittance.
DETAILED DESCRIPTION OF THE INVENTION
[0029] Embodiments of the present invention will now be described with reference to the accompanying drawings. In the accompanying drawings, the constituting elements performing the same or similar functions are denoted by the same reference numerals so as to omit the overlapping description.
[0030]FIG. 1 is a cross sectional view schematically showing the construction of a liquid crystal display <b>1</b> according to a first embodiment of the present invention. The liquid crystal display <b>1</b> shown in FIG. 1 is a liquid crystal display of a multi domain-type VAN mode and includes an active matrix substrate (or an array substrate) <b>2</b> and a counter substrate <b>3</b>. The active matrix substrate <b>2</b> is bonded to the counter substrate <b>3</b> with an adhesive layer <b>18</b> interposed therebetween such that a closed space is formed between the substrates <b>2</b> and <b>3</b>. The clearance between the active matrix substrate <b>2</b> and the counter substrate <b>3</b> is maintained constant by spacers <b>19</b>, and the closed space formed between the substrates <b>2</b> and <b>3</b> is filled with a liquid crystal material constituting a liquid crystal layer <b>4</b>. Also, a polarizing film (or polarizer) <b>5</b> is laminated on each surface of the liquid crystal display <b>1</b>.
[0031] The active matrix substrate <b>2</b> includes a transparent substrate <b>7</b> such as a glass substrate. Wirings and switching elements <b>8</b> are formed on one main surface of the transparent substrate <b>7</b>. A color filter <b>9</b> and a peripheral light shielding layer <b>12</b> are also formed on the surface of the transparent substrate <b>7</b>. Further, pixel electrodes <b>10</b> and an alignment layer <b>11</b> are formed on the color filter <b>9</b>.
[0032] The wirings formed on the transparent substrate <b>7</b> include, for example, scanning lines and signal lines made of, for example, aluminum, molybdenum or copper. On the other hand, the switching elements <b>8</b> are, for example, thin film transistors (TFTs) each including a semiconductor layer made of, for example, an amorphous silicon or a polycrystalline silicon (polysilicon) and a metal layer made of, for example, aluminum, molybdenum, chromium, copper or tantalum, and are connected to the wirings such as scanning lines and signal lines and to the pixel electrodes <b>10</b>. The particular construction of the active matrix substrate <b>2</b> permits selectively applying voltage to the desired pixel electrode <b>10</b>.
[0033] The color filter <b>9</b> interposed between the transparent substrate <b>7</b> and the pixel electrode <b>10</b> includes blue, green and red coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R. Contact holes are formed in the color filter <b>9</b> so as to permit the pixel electrodes <b>10</b> to be connected to the switching elements via the contact holes.
[0034] The pixel electrodes <b>10</b> are made of a transparent conductive material such as ITO (Indium Tin Oxide). It is possible to form the pixel electrodes <b>10</b> by forming first a thin film of a transparent conductive material by, for example, a sputtering method, followed by patterning the thin film by employing photolithography and etching.
[0035] The alignment layer <b>11</b> is a thin film made of a transparent resin such as polyimide. Incidentally, in the first embodiment of the present invention, a rubbing treatment does not performed on the alignment layer <b>11</b> since the alignment layer <b>11</b> is a vertical alignment layer.
[0036] The counter substrate <b>3</b> includes a transparent substrate <b>15</b> such as a glass substrate. A common electrode <b>16</b> and an alignment layer <b>17</b> are formed successively on the transparent substrate. It is possible for the common electrode <b>16</b> and the alignment layer <b>16</b> to be made of the materials equal to those used for forming the pixel electrodes <b>19</b> and the alignment layer <b>11</b>, respectively. Also, a rubbing treatment does not performed on the alignment layer <b>17</b> since the alignment layer <b>17</b> is a vertical alignment layer. Incidentally, in the first embodiment of the present invention, the common electrode <b>16</b> is formed in the form of a flat continuous film.
[0037]FIG. 2 is a plan view schematically exemplifying the construction that can be employed in the liquid crystal display shown in FIG. 1. In the construction shown in FIG. 2, the pixel electrode <b>10</b> includes four sections <b>10</b><i>a </i>to <b>10</b><i>d. </i>Slits <b>20</b> are formed in parallel at a prescribed period in each of the sections <b>10</b><i>a </i>to <b>10</b><i>d. </i>It should be noted that the sections <b>10</b><i>a </i>to <b>10</b><i>d </i>differ from each other in the longitudinal direction of the slit <b>20</b>. In other words, the pixel electrode <b>10</b> is a comb-shaped electrode includes the four comb-shaped sections <b>10</b><i>a </i>to <b>10</b><i>d </i>differing from each other in the longitudinal direction of the slit <b>20</b>. In the liquid crystal display <b>1</b> shown in FIG. 1, the particular construction described above permits the pixel region to be divided into four domains differing from each other in the tilting direction of the liquid crystal molecules in conformity with the sections <b>10</b><i>a </i>to <b>10</b><i>d. </i>This will now be described with reference to FIGS. 3A to <b>3</b>D.
[0038]FIGS. 3A to <b>3</b>D schematically show the change in the orientation of the liquid crystal molecules that is brought about in the case of employing the construction shown in FIG. 2 in the liquid crystal display shown in FIG. 1. Incidentally, FIGS. 3A and 3C are plan views, and FIGS. 3B and 3D are side views showing the constructions shown in FIGS. 3A and 3C observed from the lower sides in the drawings, respectively. Also, some of the constituting elements are omitted in FIGS. 3A to <b>3</b>D for the sake of simplicity.
[0039] Where a voltage is not applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>, the alignment layers <b>11</b> and <b>17</b> serve to permit liquid crystal molecules <b>25</b>, which form the liquid crystal layer <b>4</b> and have a negative dielectric anisotropy in the present embodiment, to be oriented in the vertical direction. As a result, the liquid crystal molecules <b>25</b> are oriented such that the major axes of the liquid crystal molecules are rendered substantially perpendicular to the film surface of the alignment layer <b>11</b>.
[0040] If a relatively low first voltage is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>, a leakage electric field is generated above the slit <b>20</b> of the pixel electrode <b>10</b>. As a result, the electric flux lines are inclined as shown in FIG. 3B.
[0041] The electric field generated by application of voltage between the pixel electrode <b>10</b> and the common electrode <b>16</b> serves to permit the liquid crystal molecules <b>25</b> to be oriented in a direction perpendicular to the electric flux line. It follows that the liquid crystal molecules <b>25</b> are oriented as shown in FIG. 3A by the effects of the alignment layers <b>11</b>, <b>17</b> and the electric field.
[0042] However, under the sate shown in FIG. 3A, an interference is brought about between the orienting state of the liquid crystal molecules on the right side and the orienting state of the liquid crystal molecules <b>25</b> on the left side. As a result, the tilting direction of the liquid crystal molecules <b>25</b> is changed upward or downward in the drawing so as to assume a more stable alignment state.
[0043] Suppose the portion sandwiched between a pair of slits <b>20</b> of the pixel electrode <b>10</b> or the region in the vicinity of the particular portion is shaped symmetrical or isotropic in the up-down direction in the drawing, as shown in FIG. 3A. In this case, the probability for the tilting direction of the liquid crystal molecules <b>25</b> to be changed upward as denoted by an arrow <b>31</b> is rendered equal to the probability for the tilting direction of the liquid crystal molecules <b>25</b> to be changed downward as denoted by an arrow <b>32</b>.
[0044] On the other hand, where the portion sandwiched between the pair of the slits <b>20</b> of the pixel electrode <b>10</b> and the region in the vicinity of the particular portion is asymmetric or anisotropic in the up-down direction in the drawing, as shown in FIG. 3C, the electric flux lines are rendered asymmetric between the both edge portions of the pixel electrode <b>10</b>. The electric flux lines are also rendered asymmetric between the both edge portions of the slit <b>20</b>. As a result, the alignment state in which the liquid crystal molecules <b>25</b> are oriented in the direction denoted by the arrow <b>32</b> is rendered more stable than the alignment state in which the liquid crystal molecules <b>25</b> are oriented in the direction denoted by the arrow <b>31</b>. It follows that the average tilting direction (director) of the liquid crystal molecules <b>25</b> extends downward as denoted by an arrow <b>32</b> in FIG. 3C.
[0045] If the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> is increased to a second voltage higher than the first voltage, the effect of the electric field on the orientation of the liquid crystal molecules <b>25</b>, i.e., the force to make the liquid crystal molecules <b>25</b> oriented in the direction perpendicular to the electric flux line, becomes much greater than the effect of the alignment layers <b>11</b> and <b>17</b> on the orientation of the liquid crystal molecules <b>25</b>, i.e., the force to make the liquid crystal molecules <b>25</b> oriented in the vertical direction. It follows that the liquid crystal molecules <b>25</b> are caused to change the tilting angle toward the horizontal orientation.
[0046] It should be noted that, even where the second voltage is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>, the alignment state in which the liquid crystal molecules <b>25</b> are oriented in the direction denoted by the arrow <b>32</b> is more stable than the alignment state in which the liquid crystal molecules <b>25</b> are oriented in the direction denoted by the arrow <b>31</b> as in the case where the first voltage is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>. It follows that, in the case where the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> is changed within a range of between the first voltage and the second voltage, the director of the liquid crystal molecules <b>25</b> is changed within a plane perpendicular to the arranging direction of the slits <b>20</b>. In other words, where the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> is changed within a range of between the first voltage and the second voltage, the liquid crystal molecules <b>25</b> are caused to change the tilting angle while maintaining the average tilting direction within a plane perpendicular to the arranging direction of the slits <b>20</b>.
[0047] Therefore, by allowing the four sections <b>10</b><i>a </i>to <b>10</b><i>d </i>to differ from each other in the longitudinal direction of the slit <b>20</b>, it is possible to change the tilting angle while maintaining the tilting direction of the liquid crystal molecules <b>25</b> as shown in FIG. 2. In other words, it is possible to form in a single pixel region four domains, differing from each other in the tilting direction of the liquid crystal molecules <b>25</b>, only by a structure of the active matrix substrate <b>2</b>. Also, in the first embodiment of the present invention, it is possible to change the tilting angle while maintaining the average tilting direction of the liquid crystal molecules <b>25</b> within a plane perpendicular to the arranging direction of the slits <b>20</b>, with the result that it is possible to achieve a high response speed. In addition, an alignment defect is unlikely to take place, and formation of domains in a pixel region takes place satisfactorily.
[0048] In the first embodiment of the present invention, one of the pixel electrode <b>10</b> facing the blue coloring layer <b>9</b>B, the pixel electrode <b>10</b> facing the green coloring layer <b>9</b>G and the pixel electrode <b>10</b> facing the red coloring layer <b>9</b>R differs from the other two pixel electrodes <b>10</b> in the longitudinal direction of the slit <b>20</b>. In the case of employing the particular construction, it is possible to achieve a wide viewing angle, as described in the following.
[0049]FIG. 4 is a plan view schematically exemplifying the construction of the pixel electrode that can be employed in the liquid crystal display shown in FIG. 1. Incidentally, FIG. 4 depicts the coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R and the pixel electrode <b>10</b> alone among the construction that is observed when the liquid crystal display <b>1</b> is viewed perpendicularly to the main surface of the liquid crystal display <b>1</b>. Also, the pixel electrodes <b>10</b> corresponding to the coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R are denoted by reference numerals <b>10</b>B, <b>10</b>G and <b>10</b>R, respectively.
[0050] When, for example, the second voltage is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>, the liquid crystal layer <b>4</b> performs the function similar to that performed by a λ/2 retardation plate. Therefore, in order to achieve a wide viewing angle, it is desirable for the observing angle dependence of the phase difference between a pair of linearly polarized lights, which is imparted by the liquid crystal layer <b>4</b>, to be rendered substantially constant in respect of the light of all the wavelengths, so as to suppress the change in the displayed color in accordance with the observing angle.
[0051] The phase difference between a pair of linearly polarized lights, which is imparted by the liquid crystal layer <b>4</b>, is proportional to the refractive index anisotropy Δn of the liquid crystal material and to the optical path length d, and is inversely proportional to the wavelength λ. Generally, it is difficult to change the optical path length d in accordance with the wavelength λ. Therefore, in order to render the observing angle dependence of the phase difference between a pair of linearly polarized lights, which is imparted by the liquid crystal layer <b>4</b>, substantially constant in respect of the light of all the wavelengths, it is necessary to use a liquid crystal material having a constant ratio of the refractive index anisotropy Δn to the wavelength λ. However, it is impractical to use such a liquid crystal material.
[0052] On the other hand, in the construction shown in FIG. 4, the pixel electrode <b>10</b>B, the pixel electrode <b>10</b>G and the pixel electrode <b>10</b>R are made different from each other in the longitudinal direction of the slits <b>20</b>. Where at least two of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R corresponding to the coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R, respectively, are rendered different from each other in the longitudinal direction of the slit <b>20</b>, at least two of the pixel regions corresponding to the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in the tilting directions of the liquid crystal molecules. As a result, at least two of the pixel regions corresponding to the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in the slow phase axis of the liquid crystal layer <b>4</b>.
[0053] The phase difference generated by the passage of a pair of linearly polarized lights through the liquid crystal layer <b>4</b> and the observing angle dependence of the phase difference are changed in accordance with the angle made between the polarization plane of the linearly polarized light incident on the liquid crystal layer <b>4</b> and the slow phase axis of the liquid crystal layer <b>4</b>. Also, the pixel regions corresponding to the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R play the role of modulating the light rays differing from each other in the wavelength. Therefore, by setting appropriately the angle made between the longitudinal directions of the slits <b>20</b> and by setting appropriately the angle made between the transmission easy axis of the polarizing film <b>5</b> and the longitudinal direction of the slit <b>20</b> for at least two of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R, it becomes possible to suppress the change in the displayed color in accordance with the observing angle. In other words, it is possible to achieve a wide viewing angle.
[0054] In the first embodiment of the present invention, the effect described above can be obtained, if at least two of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are different from each other in the longitudinal direction of the slit <b>20</b>. In general, the effect is rendered prominent in the case where the difference between the longitudinal direction of the slit <b>20</b> is at least 5°.
[0055] In the first embodiment of the present invention, it suffices for one of the pixel electrodes <b>10</b>B, <b>10</b>G, <b>10</b>R to be different from the other pixel electrodes in the longitudinal direction of the slit <b>20</b>. However, it is possible for the pixel electrodes <b>10</b>B, <b>10</b>G, <b>10</b>R to be different from each other in the longitudinal directions of the slits <b>20</b>.
[0056] In the first embodiment of the present invention, it is desirable to set at about 45° the angle made between the longitudinal direction of the slit <b>20</b> formed in one of the pixel electrodes <b>10</b>B, <b>10</b>G, <b>10</b>R and the transmission easy axis of one of the polarizing films <b>5</b>. The angle referred to above is advantageous for achieving a high transmittance.
[0057] For example, where the angle made between the transmission easy axis of one of the polarizing film <b>5</b> and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>R is set at about 45°, it is possible to set the angle made between the transmission easy axis noted above and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>B at an angle deviated from 45°, and to set the angle made between the transmission easy axis noted above and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>G at an angle less deviated from 45°.
[0058] Also, where the angle made between the transmission easy axis of one of the polarizing film <b>5</b> and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>G is set at about 45°, it is possible to set the deviation of the angle made between the transmission easy axis noted above and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>B from 45° substantially equal to the deviation of the angle made between the transmission easy axis noted above and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>R from 45°.
[0059] Further, where the angle made between the transmission easy axis of one of the polarizing film <b>5</b> and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>B is set at about 45°, it is possible to set the angle made between the transmission easy axis noted above and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>R at an angle deviated from 45°, and to set the angle made between the transmission easy axis noted above and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>G at an angle less deviated from 45°.
[0060] Among the cases exemplified above, it is desirable to set the angle made between the transmission easy axis of one of the polarizing films <b>5</b> and the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>G at about 45°. In this case, it is possible to obtain the greatest effect of suppressing the change in the displayed color in accordance with the observing angle.
[0061] As described above, in the first embodiment of the present invention, first and second optical regions differing from each other in the intensity of the electric field are formed in the pixel region within the liquid crystal layer <b>4</b> when a prescribed voltage is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> such that these optical regions extend in one direction and are alternately arranged repeatedly in the direction crossing the extending direction. Also, in the first embodiment of the present invention, one of the pixel region facing the blue coloring layer <b>9</b>B, the pixel region facing the green coloring layer <b>9</b>G and the pixel region facing the red coloring layer <b>9</b>R is made different from the other two pixel regions in the longitudinal direction of the first or second optical region. As a result, it is possible to suppress the change of the displayed color in accordance with the viewing angle so as to make it possible to achieve a wide viewing angle.
[0062] In other words, according to the first embodiment of the present invention, it is possible to provide a liquid crystal display capable of realizing a wide viewing angle in the case of utilizing a multi domain-type VAN mode.
[0063] A second embodiment of the present invention will now be described. The liquid crystal display according to the second embodiment of the present invention is equal to the liquid crystal display <b>1</b> according to the first embodiment of the present invention, except that the second embodiment differs from the first embodiment in the construction of the pixel electrode <b>10</b>.
[0064] As already described in conjunction with the first embodiment, the liquid crystal layer <b>4</b> plays the role similar to that played by a λ/2 retardation plate when, for example, a second voltage is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>. Therefore, in order to achieve a wide viewing angle, it is desirable for the observing angle dependence of the phase difference between a pair of linearly polarized lights, which is imparted by the liquid crystal layer <b>4</b>, to be rendered substantially constant in respect of the light of all the wavelengths, so as to suppress the change in the displayed color in accordance with the observing angle.
[0065] In the second embodiment of the present invention, the pixel regions corresponding to the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in the shape of the first and/or second optical regions. In a typical case, the comb-shaped pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in the ratio of the width and/or area of the comb-teeth portion to the slit <b>20</b>. In this case, it is possible to allow the pixel regions corresponding to the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R to be different from each other in the density of the electric flux lines, i.e., the intensity of the electric field. It follows that it is possible to allow these pixel regions to be different from each other in the tilting angle of the liquid crystal molecules <b>25</b>.
[0066] The situation that the pixel regions corresponding to the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R differ from each other in the tilting angle of the liquid crystal molecule <b>25</b> implies that the pixel regions noted above also differ from each other in the effective refractive index anisotropy Δn of the liquid crystal material. Also, the phase difference between a pair of linearly polarized lights, which is imparted by the liquid crystal layer <b>4</b>, is proportional to the refractive index anisotropy Δn of the liquid crystal material. It follows that the observing angle dependence of the phase difference between a pair of linearly polarized lights, which is imparted by the liquid crystal layer <b>4</b>, can be rendered substantially constant in respect of the light of all the wavelengths, by appropriately setting the shape of the first and/or second optical regions. In other words, it is possible to suppress the change in the displayed color in accordance with the observing angle so as to achieve a wide viewing angle.
[0067]FIG. 5 is a plan view schematically exemplifying the construction of the pixel electrode that can be utilized in the liquid crystal display <b>1</b> according to the second embodiment of the present invention. Incidentally, FIG. 5 depicts the coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R and the pixel electrode <b>10</b> observed when the liquid crystal display <b>1</b> is viewed perpendicularly to the main surface of the liquid crystal display <b>1</b>. Also, the pixel electrodes <b>10</b> corresponding to the coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R are denoted by reference numerals <b>10</b>B, <b>10</b>G and <b>10</b>R, respectively.
[0068] The construction shown in FIG. 5 is substantially equal to the construction shown in FIG. 4 except the aspect pointed out below. Specifically, in the construction shown in FIG. 4, the comb-shaped pixel electrode <b>10</b>G differs in orientation from each of the comb-shaped pixel electrodes <b>10</b>B and <b>10</b>R. On the other hand, in the construction shown in FIG. 5, the comb-shaped pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are equal in orientation to each other. Also, in the construction shown in FIG. 4, the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are equal in the width of the slit <b>20</b> to each other. In the construction shown in FIG. 5, however, the width W<sub>2G </sub>of the slit <b>20</b> formed in the pixel electrode <b>10</b>G, the width W<sub>2B </sub>of the slit <b>20</b> formed in the pixel electrode <b>10</b>B, and the width W<sub>2R </sub>of the slit <b>20</b> formed in the pixel electrode <b>10</b>R differ from each other.
[0069] Where at least two of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R corresponding to the coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R differ from each other in the width of the slit <b>20</b> as described above, the pixel regions corresponding to the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in the tilting angle of the liquid crystal molecules, i.e., in the effective refractive index anisotropy Δn of the liquid crystal material. As a result, it is possible to suppress the change in the displayed color in accordance with the observing angle.
[0070] In the second embodiment of the present invention, the particular effect described above can be obtained, if at least two of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in the width W<sub>2 </sub>of the slit <b>20</b>. It is also possible to obtain the particular effect described above in the case where at least two of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in the width of the comb-teeth portion. Further, the particular effect can be obtained in the case where at least two of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R are rendered different from each other in both the width of the comb-teeth portion and the width of the slit <b>20</b>.
[0071] In the second embodiment of the present invention, it suffices for one of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R to differ from the other pixel electrodes in the shape for obtaining the particular effect. Of course, it is possible for all three pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R to differ from each other in shape.
[0072] As described above, in the second embodiment of the present invention, first and second optical regions differing from each other in the intensity of the electric field are formed in the pixel region within the liquid crystal layer <b>4</b> when a prescribed voltage is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> such that these optical regions extend in one direction and are alternately arranged repeatedly in the direction crossing the extending direction. Also, in the second embodiment of the present invention, one of the pixel region facing the blue coloring layer <b>9</b>B, the pixel region facing the green coloring layer <b>9</b>G and the pixel region facing the red coloring layer <b>9</b>R is made different from the other two pixel regions in the shape of the first and/or second optical region. As a result, it is possible to suppress the change of the displayed color in accordance with the viewing angle so as to make it possible achieve a wide viewing angle.
[0073] In other words, according to the second embodiment of the present invention, it is possible to provide a liquid crystal display capable of realizing a wide viewing angle in the case of utilizing a multi domain-type VAN mode.
[0074] The techniques described above in conjunction with the first and second embodiments of the present invention can be utilized in combination. For example, in the construction shown in FIG. 4, it is possible for the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R to be made different from each other in the width of the slit <b>20</b>.
[0075] In each of the first and second embodiments of the present invention, the image display is performed by controlling the optical characteristics of the liquid crystal layer <b>4</b>, and the optical characteristics of the liquid crystal layer <b>4</b> are controlled by forming a plane wave-like distribution in the intensity of a electric field within the pixel region and by changing the intensity of the electric field. The formation of such a distribution in the intensity of the electric field can be actually confirmed by, for example, applying voltage to the pixel electrode <b>10</b> under the state that the counter substrate <b>3</b> is removed from the active matrix substrate <b>2</b>. It is also possible to confirm the formation of the distribution in the intensity of the electric field by the method described below.
[0076] In performing the control described above, an electric field having an intensity higher than that in the portion on the slit <b>20</b> is formed in a portion on the pixel electrode <b>10</b> in the liquid crystal layer <b>4</b>. As a result, the liquid crystal molecules <b>25</b> in the portion on the pixel electrode <b>10</b> are inclined more greatly than the liquid crystal molecules <b>25</b> in the portion on the slit <b>20</b>. In other words, the portion on the pixel electrode <b>10</b> and the portion on the slit <b>20</b> in the liquid crystal layer <b>4</b> are rendered different from each other in the average tilting angle of the liquid crystal molecules <b>25</b>. Such a difference in the tilting angle can be observed as an optical difference.
[0077]FIG. 6 exemplifies the distribution of the transmittance that is observed in the case of employing the construction shown in FIG. 2 in the liquid crystal display shown in FIG. 1. Incidentally, FIG. 6 shows the plane wave-like distribution of the transmittance that is observed in the case where a third voltage, intermediate between the first and second voltages, is applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> under the state that a polarizer (or a polarizing film) is arranged on the side of each of the light source and the observer relative to the liquid crystal layer <b>4</b>. It follows that, according to the first and second embodiments of the present invention, the characteristics described above with reference to FIGS. <b>1</b> to <b>5</b> can be observed as the optical characteristics.
[0078] In the construction described above with reference to FIGS. <b>2</b> to <b>6</b>, the width of the slit <b>20</b> is set constant in the longitudinal direction of the slit <b>20</b>. However, it is possible for the width of the slit <b>20</b> to be changed in the longitudinal direction of the slit <b>20</b>.
[0079]FIG. 7 is a plan view schematically exemplifying the construction that can be employed in the liquid crystal display shown in FIG. 1. On the other hand, FIG. 8 schematically shows the change in the orientation of the liquid crystal molecules that is brought about in the case of employing the construction shown in FIG. 7 in the liquid crystal display shown in FIG. 1. Incidentally, the section <b>10</b><i>a </i>alone of the four sections <b>10</b><i>a </i>to <b>10</b><i>d </i>is depicted in FIG. 7, and only a part of the section <b>10</b><i>a </i>shown in FIG. 6 is depicted in FIG. 8.
[0080] In the construction shown in FIGS. 7 and 8, the width of the slit <b>20</b> is continuously increased from the central portion of the pixel electrode <b>10</b> toward the peripheral portion. According to the particular construction, alignment of liquid crystal induces the director to be oriented in the direction denoted by arrows <b>32</b> in not only an upper end of the comb-teeth portion but also side ends of the comb-teeth portion as shown in FIG. 8. It follows that the construction shown in FIGS. 7 and 8 permits further improving the transmittance and the response speed.
[0081] In the description given above, distribution of the electric field intensity, in which regions having a low intensity and regions having a high intensity are alternately arranged periodically, is generated in each domain by forming the slit <b>20</b> in the pixel electrode <b>10</b>. If the slit <b>20</b> is used for forming the distribution of the electric field intensity, a relatively high degree of freedom in design is possible. However, the electric field distribution can also be generated by another method. Examples will now be described with reference to FIGS. 9A and 9B.
[0082]FIGS. 9A and 9B are cross sectional views each schematically exemplifying the construction that can be utilized in the liquid crystal display shown in FIG. 1.
[0083] In the construction shown in FIG. 9A, a dielectric layer <b>21</b> that is patterned like the slits <b>20</b> is formed on the pixel electrode <b>10</b> in place of forming the slits <b>20</b> on the pixel electrode <b>10</b>. In this case, a region having an electric field of a lower intensity can be formed above the dielectric layer <b>21</b> if a material having a dielectric constant lower than that of the liquid crystal material such as an acrylic resin, an epoxy resin or a novolak resin is used for forming the dielectric layer <b>21</b>. It follows that it is possible to obtain an effect similar to that obtained in the case of forming the slit <b>20</b>.
[0084] On the other hand, in the construction shown in FIG. 9B, a wiring <b>23</b> is formed on the pixel electrode <b>10</b> with a transparent insulating layer <b>22</b> interposed therebetween in place of forming the slit <b>20</b> on the pixel electrode <b>10</b>. The wiring <b>23</b>, which forms, for example, a signal line, a gate line or an auxiliary capacitance line, is arranged in a pattern similar to that of the slit <b>20</b>. According to the construction, a region having an electric field of a higher intensity can be formed above the wiring <b>23</b>. It follows that it is also possible in this case to obtain an effect similar to that obtained in the case of forming the slit <b>20</b>.
[0085] Incidentally, in the case where the liquid crystal display <b>1</b> is of a transmission type, it is desirable in terms of the transmittance to use a transparent material for forming the dielectric layer <b>21</b> and the wiring <b>23</b>. Also, where the liquid crystal display <b>1</b> is of a reflection type, it is possible to use an opaque material, such as a metallic material, in addition to the transparent material for forming the dielectric layer <b>21</b> and the wiring <b>23</b>.
[0086] In each of the first and second embodiments of the present invention described above, it is desirable for the sum W<sub>12 </sub>of the width W<sub>1 </sub>of the region having an electric field of a higher intensity and the width W<sub>2 </sub>of the region having an electric field of a lower intensity within the liquid crystal layer <b>4</b> to be not larger than 20 μm. If the sum W<sub>12 </sub>of the widths W<sub>1 </sub>and W<sub>2 </sub>noted above is not larger than 20 μm, it is possible to control the orientation of the liquid crystal molecules described above, so as to make it possible to achieve a sufficiently high transmittance. Also, it is desirable for the sum W<sub>12 </sub>noted above to be not smaller than 6 μm. If the sum W<sub>12 </sub>is not smaller than 6 μm, it is possible in general to form the structure that permits forming regions having an electric field of a higher intensity and regions having an electric field of a lower intensity within the liquid crystal layer <b>4</b> at a sufficiently high precision. In addition, it is possible to achieve alignment of the liquid crystal with a higher stability.
[0087] Incidentally, the sum W<sub>12 </sub>noted above is substantially equal to the sum of the width of the comb-teeth portion of the pixel electrode <b>10</b> that is sandwiched between the adjacent slits <b>20</b> and the width of the slit <b>20</b>, the sum of the width of the portion sandwiched between the adjacent dielectric layers <b>21</b> and the width of the dielectric layer <b>21</b>, the sum of the width of the wiring <b>23</b> formed on the pixel electrode <b>10</b> and the width of the region sandwiched between the adjacent wirings <b>23</b>, the sum of the width of the region having a larger tilting angle and the width of the region having a smaller tilting angle during application of the third voltage, or the sum of the width of the region having a higher transmittance and the width of the region having a lower transmittance during application of the third voltage. It follows that it is also desirable for each of the sums of the widths noted above to be not larger than 20 μm and to be not smaller than 6 μm.
[0088] In each of the first and second embodiments of the present invention, it is desirable for each of the width W<sub>1 </sub>and the width W<sub>2 </sub>to be not larger than 8 μm. It is also desirable for each of the width W<sub>1 </sub>and the width W<sub>2 </sub>to be not smaller than 4 μm. Where each of the width W<sub>1 </sub>and the width W<sub>2 </sub>falls within a range of between 4 μm and 8 μm, a sufficiently high performance in practice can be expected in respect of the response speed and the transmittance.
[0089] Incidentally, the width W<sub>1 </sub>and the width W<sub>2 </sub>noted above correspond to the width of the comb-teeth portion of the pixel electrode <b>10</b> that is sandwiched between the adjacent slits <b>20</b> and the width of the slit <b>20</b>, the width of the region sandwiched between the adjacent dielectric layers <b>21</b> and the width of the dielectric layer <b>21</b>, the width of the wiring <b>23</b> formed on the pixel electrode <b>10</b> and the width of the region sandwiched between the adjacent wirings <b>23</b>, the width of the region having a larger tilting angle and the width of the region having a smaller tilting angle during application of the third voltage, and the width of the region having a higher transmittance and the width of the region having a lower transmittance during application of the third voltage, respectively. It follows that it is also desirable for each of the widths noted above to be not larger than 8 μm and to be not smaller than 4 μm.
[0090] In each of the first and second embodiments of the present invention, the length of the region having an electric field of a higher intensity and the length of the region having an electric field of a lower intensity within the liquid crystal layer <b>4</b> should be larger than the width W<sub>1 </sub>and the width W<sub>2</sub>, respectively. Also, it is desirable for each of the lengths noted above to be at least twice the width W<sub>12</sub>, which is the sum of the widths W<sub>1 </sub>and W<sub>2</sub>. In this case, it is possible to permit more liquid crystal molecules to be oriented in the longitudinal direction of each of these regions.
[0091] In each of the first and second embodiments of the present invention described above, both the region having an electric field of a higher intensity and the region having an electric field of a lower intensity in the liquid crystal layer <b>4</b> are formed asymmetric in the up-down direction, as shown in FIG. 3C. Alternatively, it is possible for these regions to be formed symmetric in the up-down direction as shown in FIG. 3A. The former case is advantageous over the latter case in terms of, for example, the response speed.
[0092] In each of the first and second embodiments of the present invention described above, employed is a VAN mode in which nematic liquid crystal molecules having a negative dielectric anisotropy are vertically aligned. Alternatively, it is also possible to use nematic liquid crystal molecules having a positive dielectric anisotropy. Particularly, where a high contrast is desired, it is possible to achieve a high contrast not lower than, for example, 400:1 and a brighter screen design based on a high transmittance design, by employing a VAN mode and a normally black mode.
[0093] In each of the first and second embodiments of the present invention described above, the shapes of the sections <b>10</b><i>a </i>to <b>10</b><i>d </i>collectively constituting the pixel electrode <b>10</b> are not particularly limited. For example, it is possible for each of the sections <b>10</b><i>a </i>to <b>10</b><i>d </i>to be rectangular or to be fan-shaped.
[0094] In each of the first and second embodiments of the present invention described above, the pixel electrode <b>10</b> is formed of a plurality of sections <b>10</b><i>a </i>to <b>10</b><i>d. </i>Alternatively, where it is not desired to divide a single pixel region into a plurality of domains differing from each other in the tilting direction of the liquid crystal molecules, it is possible for the pixel electrode to be formed of a single region alone. Incidentally, where a single pixel region includes a plurality of combinations of the region having an electric field of a higher intensity and the region having an electric field of a lower intensity, it is desirable for the regions having an electric field of a higher intensity or the region having an electric field of a lower intensity, which are included in the adjacent combinations, to be parallel and/or perpendicular to each other, and to differ from each other in the director of the liquid crystal molecules contained in the liquid crystal layer <b>4</b> during the voltage application.
[0095] In each of the first and second embodiments of the present invention described above, the structure, which permits forming a region having an electric field of a higher intensity and a region having an electric field of a lower intensity within the liquid crystal layer during application of the third voltage, is formed only in the active matrix substrate <b>2</b>. However, it is possible to form a structure in each of the active matrix substrate <b>2</b> and the counter substrate <b>3</b> in order to form a region having an electric field of a higher intensity and a region having an electric field of a lower intensity within the liquid crystal layer during application of the third voltage. It should be noted in this connection that, in the former case, high precision positioning utilizing, for example, an alignment mark is rendered unnecessary in forming a cell by bonding the active matrix substrate <b>2</b> to the counter substrate <b>3</b>.
[0096] Further, in each of the first and second embodiments of the present invention described above, employed is the structure in which color filter <b>9</b> is disposed on the active matrix substrate <b>2</b>. However, it is also possible to dispose the color filter <b>9</b> on the counter substrate <b>3</b>. It should be noted in this connection that, in the former case, high precision positioning utilizing, for example, an alignment mark is rendered unnecessary in forming a cell by bonding the active matrix substrate <b>2</b> to the counter substrate <b>3</b>.
[0097] Some examples of the present invention will now be described.
EXAMPLE 1
[0098] A liquid crystal display <b>1</b> as shown in FIG. 1 was manufactured as follows. In this Example, the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R having planar shapes, as shown in FIG. 4, were formed as the pixel electrode <b>10</b>.
[0099]FIG. 10 is a cross sectional view schematically showing the construction of a part of the active matrix substrate <b>2</b> included in the liquid crystal display <b>1</b> shown in FIG. 1. In this Example, the active matrix substrate <b>2</b> shown in FIG. 10 was prepared first as follows.
[0100] First, an undercoat layer <b>40</b> was formed on a glass substrate <b>7</b>. Then, a polysilicon layer was formed on the undercoat layer <b>40</b>, followed by patterning the polysilicon layer and subsequently doping the patterned polysilicon layer with an impurity. As a result, formed were a channel region <b>41</b> as a semiconductor layer of a TFT <b>8</b>, a drain region <b>42</b> and a source region <b>43</b> each doped with an impurity, and an auxiliary capacitor electrode <b>44</b>. Then, a gate insulator <b>45</b> was formed to cover the channel region <b>41</b>, the drain region <b>42</b>, the source region <b>43</b> and the auxiliary capacitor electrode <b>44</b>. Incidentally, contact holes were formed in the gate insulator <b>45</b> in the positions corresponding to the drain region <b>42</b>, the source region <b>43</b> and the auxiliary capacitor electrode <b>44</b>.
[0101] Next, a scanning line 46, which serves as a gate electrode, too, and an auxiliary capacitor line <b>47</b> were formed on the gate insulator <b>45</b>, followed by forming an interlayer insulating film <b>48</b> in a manner to cover the scanning line <b>46</b> and the auxiliary capacitor line <b>47</b>. A contact hole communicating with the contact hole of the gate insulator <b>45</b> was formed in the interlayer insulating film <b>48</b>. Then, a signal line <b>49</b>, which serves as a drain electrode, too, a source electrode <b>50</b>, and a contact electrode <b>51</b> were formed on the interlayer insulating film <b>48</b>.
[0102] Incidentally, the signal line <b>49</b> was arranged to cross each of the scanning line <b>46</b> and the auxiliary capacitor line <b>47</b> at substantial right angles. The auxiliary capacitor line <b>47</b> was insulated from the contact electrode <b>51</b>. In this case, a molybdenum-tungsten was used for forming each of the scanning line <b>46</b> and the auxiliary capacitor line <b>47</b>. On the other hand, an aluminum-based material was used for forming the signal line <b>49</b>.
[0103] Next, the color filter <b>9</b> and the peripheral light shielding layer <b>12</b> were formed on the surface of the resultant structure. To be more specific, the surface of the substrate <b>7</b> on which the TFT <b>8</b>, etc. was formed was coated with an ultraviolet-curing acrylic resin resist having a red pigment dispersed therein, by using a spinner. Then, the coated resin resist film was dried at 90° C. for 100 minutes, followed by irradiating the portion of the coated film, in which a red coloring layer <b>9</b>R is to be formed, with ultraviolet light having a wavelength of 365 nm at an intensity of 100 mJ/cm<sup>2</sup>. The irradiation of the coated film with with ultraviolet light was performed via a prescribed photomask. Then, the coated film was subjected to a developing treatment for 20 seconds by using a 1% aqueous solution of KOH so as to form a red coloring layer <b>9</b>R having a thickness of 3.2 μm. Further, a green coloring layer <b>9</b>G and a blue coloring layer <b>9</b>B were successively formed by a method similar to that above for forming the red coloring layer <b>9</b>R. A baking treatment was then applied at 200° C. for 60 minutes so as to obtain a color filter <b>9</b> including the red, green and blue coloring layers <b>9</b>R, <b>9</b>G and <b>9</b>B.
[0104] Incidentally, the wavelength of the visible light exhibiting the highest transmittance, i.e., the maximum transmission wavelength, of the red coloring layer <b>9</b>R was found to be 620 nm. Also, the maximum transmission wavelength of the green coloring layer <b>9</b>G was found to be 550 nm, and the maximum transmission wavelength of the blue coloring layer <b>9</b>B was found to be 440 nm. Also, contact holes for connecting the pixel electrode <b>10</b> to the source electrode <b>50</b> and to the auxiliary capacitor electrode <b>51</b> were formed in the color filter <b>9</b>. Further, the blue, green and red coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R constituting the color filter <b>9</b> were allowed to partially overlap with each other so as to form spacer <b>19</b> shown in FIG. 1.
[0105] Next, an ITO layer was formed to a thickness of 150 nm on the color filter <b>9</b> by a sputtering method via a mask of a prescribed pattern. Then, a resist pattern was formed on the ITO film, and the exposed portion of the ITO film was etched by using the resist pattern as a mask. In this fashion, the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R shown in FIG. 4 were formed as the pixel electrode <b>10</b>. Incidentally, the width W<sub>2 </sub>of the slit <b>20</b> was set at 5 μm, and the width W<sub>1 </sub>of the portion of the pixel electrode <b>10</b> that was sandwiched between the adjacent slits <b>20</b>, i.e., the comb-teeth portion, was also set at 5 μm.
[0106] Then, the entire surface of the glass substrate <b>7</b> on which the pixel electrode <b>10</b> was formed was coated with a thermosetting resin, followed by baking the coated film so as to form a vertical alignment layer <b>11</b> having a thickness of 70 nm. In this fashion, preparation of the active matrix substrate <b>2</b> was finished.
[0107] Next, an ITO film was formed as a common electrode <b>16</b> by a sputtering method on one main surface of another glass substrate <b>15</b>. Then, a vertical alignment layer <b>17</b> was formed on the entire surface of the common electrode <b>16</b> by a method similar to that used for preparation of the active matrix substrate <b>2</b>. In this fashion, preparation of a counter substrate <b>3</b> was finished.
[0108] Then, the active matrix substrate <b>2</b> was bonded to the counter substrate <b>3</b>. To be more specific, the peripheral portion of the active matrix substrate <b>2</b> was aligned with the peripheral portion of the counter substrate <b>3</b> such that the alignment layer <b>11</b> formed on the active matrix substrate <b>2</b> was faced the alignment layer <b>17</b> formed on the counter substrate <b>17</b>. Under this condition, the active matrix substrate <b>2</b> was bonded to the counter substrate <b>3</b> with a thermosetting epoxy resin adhesive layer <b>18</b> interposed therebetween, in a manner to leave an injection port for injecting a liquid crystal material into a free space defined by the active matrix substrate <b>2</b>, the counter substrate <b>3</b> and the thermosetting epoxy resin adhesive <b>18</b>. Then, the resultant structure was heated so as to form a liquid crystal cell. Incidentally, the cell gap of the liquid crystal cell was maintained constant by using the spacer <b>19</b> having a height of 4 μm. Also, in bonding the active matrix substrate <b>2</b> to the counter substrate <b>3</b>, the edge portions of the active matrix substrate <b>2</b> and the counter substrate <b>3</b> were aligned so as to position the active matrix substrate <b>2</b> and the counter substrate <b>3</b>. In other words, high precision positioning utilizing, for example, an alignment mark, was not performed. Further, a conductive material layer, such as a silver paste layer, was formed on the terminal arranged outside the area of the active matrix substrate <b>2</b> surrounded by the adhesive layer <b>18</b>, so as to connect the terminal to the common electrode <b>16</b>.
[0109] Next, a fluorine-series liquid crystal material having a negative dielectric anisotropy was injected into the liquid crystal cell by a standard method, so as to form a liquid crystal layer <b>4</b>. Then, the liquid crystal injection port was sealed with an ultraviolet-curing resin, and polarizing films <b>5</b> were attached to both surfaces of the liquid crystal cell so as to obtain the liquid crystal display <b>1</b> shown in FIG. 1.
[0110] Incidentally, the transmission easy axis of one of the polarizing films <b>5</b> was perpendicular to the transmission easy axis of the other polarizing film <b>5</b>. Also, the angle made between the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>G and the transmission easy axis of one of the polarizing films <b>5</b> and the angle made between the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>G and the transmission easy axis of the other polarizing film <b>5</b> were set at 45° and 135°, respectively. Also, the angle made between the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>B and the transmission easy axis of one of the polarizing films <b>5</b> and the angle made between the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>B and the transmission easy axis of the other polarizing film <b>5</b> were deviated by 12° from 45° and 135°, respectively. Further, the angle made between the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>R and the transmission easy axis of one of the polarizing films <b>5</b> and the angle made between the longitudinal direction of the slit <b>20</b> formed in the pixel electrode <b>10</b>R and the transmission easy axis of the other polarizing film <b>5</b> were deviated by 10° from 45° and 135°, respectively.
[0111]FIG. 11 is an equivalent circuit diagram of the liquid crystal display <b>1</b>. As shown in FIG. 11, (m×n) pixel electrodes <b>10</b> are arranged to form a matrix in the liquid crystal display <b>1</b>. An m-number of scanning lines <b>46</b> extend in the row direction of the pixel electrode <b>10</b> and are arranged in the column direction. On the other hand, an n-number of signal lines <b>49</b> extend in the column direction of the pixel electrode <b>10</b> and are arranged in the row direction.
[0112] The scanning line <b>46</b> is connected to a scanning line driving circuit <b>61</b>, and the signal line <b>49</b> is connected to a signal line driving circuit <b>62</b>. Also, the TFT <b>8</b> is connected between the signal line <b>49</b> and the pixel electrode <b>10</b>, and gate of the TFT <b>8</b> is connected to the scanning line <b>46</b>. Further, the common electrode <b>16</b> is connected to a common electrode driving circuit <b>63</b>.
[0113] The auxiliary capacitor electrode <b>44</b> and the auxiliary capacitor line <b>47</b> collectively form an auxiliary capacitor C. The auxiliary capacitor electrode <b>44</b> is connected to the pixel electrode <b>10</b>, and the auxiliary capacitor line <b>47</b> is connected to the common electrode <b>16</b>.
[0114] It was possible to drive the liquid crystal display <b>1</b> manufactured by the method described above by changing, for example, the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> within a range of between about 1V and about 4V. Also, the liquid crystal display <b>1</b> was observed under the state that a voltage of 3.5V was applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>. As a result, observed was a distribution of the transmittance conforming with the shape of the pixel electrode <b>10</b>. Further, the viewing angle characteristics of the liquid crystal display <b>1</b> were examined under the conditions described above, with the result that the dependence of the displayed color on the observing angle was scarcely recognized, even in the case where the liquid crystal display <b>1</b> was observed in a direction making an angle of 80° with the line normal to the main surface of the liquid crystal display <b>1</b>.
EXAMPLE 2
[0115] In this Example, the relationship between the width W<sub>2 </sub>of the slit <b>20</b> formed in the pixel electrode <b>10</b> and the transmittance was examined first.
[0116]FIG. 12 is a graph exemplifying the relationship between the width W<sub>2 </sub>of the slit <b>20</b> formed in the pixel electrode <b>10</b> and the transmittance. In the graph of FIG. 12, the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> is plotted on the abscissa, and the transmittance is plotted on the ordinate.
[0117] Incidentally, the data given in FIG. 12 was obtained in the case where the product Δn×d of the refractive index anisotropy An relating to the wavelength of 593 nm and the thickness d of the liquid crystal layer <b>4</b> was 325 nm. To be more specific, curve <b>71</b> shown in FIG. 12 denotes the transmittance in the case where the maximum transmission wavelength is 440 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 4 μm. Curve <b>72</b> shown in FIG. 12 denotes the transmittance in the case where the maximum transmission wavelength is 440 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 5 μm. A curve <b>73</b> shown in FIG. 12 denotes the transmittance in the case where the maximum transmission wavelength is 550 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 4 μm. A curve <b>74</b> shown in FIG. 12 denotes the transmittance in the case where the transmittance in the case where the maximum transmission wavelength is 440 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 6 μm. A curve <b>75</b> shown in FIG. 12 denotes the transmittance in the case where the maximum transmission wavelength is 550 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 6 μm and the transmittance in the case where the maximum transmission wavelength is 620 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 4 μm. Curve <b>76</b> shown in FIG. 12 denotes the maximum transmission wavelength is the transmittance in the case where the maximum transmission wavelength is 620 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 5 μm. Further, curve <b>77</b> shown in FIG. 12 denotes the transmittance in the case where the maximum transmission wavelength is 620 nm and the width W<sub>2 </sub>of the slit <b>20</b> is 6 μm.
[0118] As shown in FIG. 12, the transmittance is dependent on the width W<sub>2 </sub>of the slit <b>20</b>. In other words, it is possible to change the effective refractive index anisotropy Δn of the liquid crystal material in accordance with the width W<sub>2 </sub>of the slit <b>20</b>.
[0119] Next, examined were the conditions which permit the transmittance to be 40% in the case of applying a voltage of 4.5V between the pixel electrode <b>10</b> and the common electrode <b>16</b>.
[0120]FIG. 13 is a graph showing how the wavelength affects the relationship between the width W<sub>2 </sub>of the slit <b>20</b> formed in the pixel electrode <b>10</b> and the transmittance. In the graph of FIG. 13, the wavelength is plotted on the abscissa, and the width W<sub>2 </sub>of the slit <b>20</b> is plotted on the ordinate. Incidentally, a line <b>81</b> shown in FIG. 13 denote the conditions which permit the transmittance to be 40% in the case of applying a voltage of 4.5V between the pixel electrode <b>10</b> and the common electrode <b>16</b>. On the other hand, line <b>82</b> shown in FIG. 13 denotes the conditions which permit the transmittance to be 40% in the case of applying a voltage of 3.8V between the pixel electrode <b>10</b> and the common electrode <b>16</b>.
[0121] The data given in FIG. 13 can be utilized in the case where, for example, it is desirable to make the blue, green and red pixel regions equal to each other in the transmittance. To be more specific, uniform transmittance can be achieved by setting the width W<sub>2 </sub>of the slit <b>20</b> formed in each of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>9</b>R at a value obtained by referring the maximum transmission wavelength of each of the blue, green and red coloring layers <b>9</b>B, <b>9</b>G and <b>9</b>R to the data given in FIG. 13. In other words, the adjustment of the color tone, e.g., the white balance, can be achieved by appropriately setting the width W<sub>2 </sub>of the slit <b>20</b> formed in each of the pixel electrodes <b>10</b>B, <b>10</b>G and <b>10</b>R.
[0122] Next, prepared was a liquid crystal display <b>1</b> by a method similar to the method in Example 1, except that the construction shown in FIG. 5 was employed in the pixel electrode <b>10</b>. Incidentally, the width W<sub>2R </sub>of the slit <b>20</b> was set at 2.7 μm, the width W<sub>2G </sub>of the slit <b>20</b> was set at 4.0 μm, and the width W<sub>2B </sub>of the slit <b>20</b> was set at 6.0 μm. What should be noted is that the width W<sub>2 </sub>of the slit <b>20</b> was set smaller in the pixel electrode <b>10</b> positioned to face the coloring layer having longer maximum transmission wavelength, and the width W<sub>2 </sub>of the slit <b>20</b> was set larger in the pixel electrode <b>10</b> positioned to face the coloring layer having shorter maximum transmission wavelength. In other words, the area ratio of the pixel electrode <b>10</b> to a unit area was set higher in the pixel electrode <b>10</b> positioned to face the coloring layer having longer maximum transmission wavelength, and the area ratio of the pixel electrode <b>10</b> to a unit area was set lower in the pixel electrode <b>10</b> positioned to face the coloring layer having shorter maximum transmission wavelength. Also, the width W<sub>1 </sub>of the portion of the pixel electrode <b>10</b> sandwiched between the adjacent slits <b>20</b>, i.e., the comb-teeth portion, was set at 5 μm.
[0123] It was possible to drive the liquid crystal display <b>1</b> manufactured by the method described above by changing, for example, the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>10</b> within a range of between about 1V and about 5V. Also, the liquid crystal display <b>1</b> was found to be capable of a good white display. The display characteristics of the liquid crystal display <b>1</b> are shown in the table given below: <tables id="TABLE-US-00001" num="1"><table frame="none" colsep="0" rowsep="0"><tgroup align="left" colsep="0" rowsep="0" cols="4"><colspec colname="OFFSET" colwidth="35PT" align="left" /><colspec colname="1" colwidth="77PT" align="center" /><colspec colname="2" colwidth="42PT" align="center" /><colspec colname="3" colwidth="63PT" align="center" /><thead><row><entry /><entry /></row><row><entry /><entry namest="OFFSET" nameend="3" align="center" rowsep="1" /></row><row><entry /><entry /><entry>Uniformity</entry><entry>Response</entry></row><row><entry /><entry>Transmissivity</entry><entry>of domain</entry><entry>time</entry></row><row><entry /><entry>(%)</entry><entry>size</entry><entry>(ms)</entry></row><row><entry /><entry namest="OFFSET" nameend="3" align="center" rowsep="1" /></row></thead><tbody valign="top"><row><entry /></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="5"><colspec colname="OFFSET" colwidth="14PT" align="left" /><colspec colname="1" colwidth="21PT" align="left" /><colspec colname="2" colwidth="77PT" align="char" char="." /><colspec colname="3" colwidth="42PT" align="center" /><colspec colname="4" colwidth="63PT" align="char" char="." /><tbody valign="top"><row><entry /><entry>Ex.2</entry><entry>17</entry><entry>Good</entry><entry>25</entry></row><row><entry /><entry>Ex.3</entry><entry>18</entry><entry>Good</entry><entry>23</entry></row><row><entry /><entry>Ex.4</entry><entry>19</entry><entry>Good</entry><entry>29</entry></row><row><entry /><entry namest="OFFSET" nameend="4" align="center" rowsep="1" /></row></tbody></tgroup></table></tables>
[0124] Also, the liquid crystal display <b>1</b> was observed under the state that voltage of about 4.5V was applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>. As a result, observed was a distribution of the transmittance conforming with the shape of the pixel electrode <b>10</b>. Further, the viewing angle characteristics of the liquid crystal display <b>1</b> were examined under the condition given above, with the result that the dependence of the displayed color on the observing angle was scarcely recognized, even in the case where the liquid crystal display <b>1</b> was observed in a direction making an angle of 80° with a line normal to the main surface of the liquid crystal display <b>1</b>.
EXAMPLE 3
[0125] In this Example, prepared was a liquid crystal display <b>1</b> in which the construction shown in FIG. 5 was employed in the pixel electrode <b>10</b> by a method similar to the method described previously in conjunction with Example 2. In Example 3, however, the width W<sub>1 </sub>of the portion of the pixel electrode <b>10</b> sandwiched between the adjacent slits <b>20</b>, i.e., the comb-teeth portion, was set at 4 μm.
[0126] It was possible to drive the liquid crystal display <b>1</b> by, for example, changing the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> within a range of between about 1V and about 5V. The display characteristics of the liquid crystal display <b>1</b> are also shown in the table given above.
[0127] Also, the liquid crystal display <b>1</b> was observed under the state that voltage of about 4.5V was applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>. As a result, observed was a distribution of the transmittance conforming with the shape of the pixel electrode <b>10</b>. Further, the viewing angle characteristics of the liquid crystal display <b>1</b> were examined under the condition given above, with the result that the dependence of the displayed color on the observing angle was scarcely recognized, even in the case where the liquid crystal display <b>1</b> was observed in a direction making an angle of 80° with a line normal to the main surface of the liquid crystal display <b>1</b>.
EXAMPLE 4
[0128] In this Example, prepared was a liquid crystal display <b>1</b> in which a construction similar to that shown in FIG. 5 was employed in the pixel electrode <b>10</b> by a method similar to the method described previously in conjunction with Example 2. In Example 4, however, the construction shown in FIG. 9A was employed in place of forming the slit <b>20</b> in the pixel electrode <b>10</b>. To be more specific, prepared was the pixel electrode <b>10</b> in which the slit <b>20</b> was not formed, and a dielectric layer <b>21</b> was formed to a thickness of 1.4 μm on the pixel electrode <b>10</b> such that the dielectric layer <b>21</b> was patterned like the slit <b>20</b>.
[0129] It was possible to drive the liquid crystal display <b>1</b> by, for example, changing the voltage applied between the pixel electrode <b>10</b> and the common electrode <b>16</b> within a range of between about 1V and about 5V. The display characteristics of the liquid crystal display <b>1</b> are also shown in the table given above.
[0130] Also, the liquid crystal display <b>1</b> was observed under the state that voltage of about 4.5V was applied between the pixel electrode <b>10</b> and the common electrode <b>16</b>. As a result, observed was a distribution of the transmittance conforming with the shape of the pixel electrode <b>10</b>. Further, the viewing angle characteristics of the liquid crystal display <b>1</b> were examined under the condition given above, with the result that the dependence of the displayed color on the observing angle was scarcely recognized even in the case where the liquid crystal display <b>1</b> was observed in a direction making an angle of 80° with a line normal to the main surface of the liquid crystal display <b>1</b>.
[0131] Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the present invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.
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Numbers
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- 2003197819
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- US2003197819
- Application
- 10418132
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- 41813203
- Application, EPODOC
- US20030418132
Titles
- English
- Liquid crystal display
Classification
- CPC, 4
- G02F1/133707
- G02F1/1343
- G02F1/134309
- G02F1/1393
- IPC, 3
- G02F1 1333
- G02F1 1343
- G02F1 139
- USPC, 1
- 349113000