EP1817798A2

Cap layers and/or passivation layers for nitride-based transistors, transistor structures and methods of fabricating same

Abstract

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Projected expiry passed 31 August 2025, 1.1 years ago.

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111 claims: 14 independent, 97 dependent

  1. 1
    Claims of equivalent WO 2006057686 A2 THAT WHICH IS CLAIMED IS:1. A Group Ill-nitride high electron mobility transistor, comprising: a Group Ill-nitride based channel layer;a Group Ill-nitride based barrier layer on the channel layer;and a non-uniform composition AlGaN based cap layer on the barrier layer and having a higher concentration of Al adjacent a surface of the cap layer that is remote from the barrier layer than is present in a region within the AlGaN based cap layer.
  2. 2
    The transistor of Claim 1, further comprising a gate contact recessed into the AlGaN based cap layer and wherein the higher concentration of Al extends into the cap layer from about 30 to about 1000 A.
  3. 3
    The transistor of Claim 1, further comprising a gate contact on the AlGaN based cap layer and not recessed into the AlGaN based cap layer and wherein the higher concentration of Al extends into the cap layer from about 2.5 A to about 100 A.
  4. 4
    The transistor of Claim 1 , wherein the AlGaN based cap layer includes a first region of Al x Gai -x N adjacent the surface of the cap layer that is remote from the barrier layer, where x<l and a second region of Al y Gai -y N within the AlGaN based cap layer, where y<l and y<x.
  5. 5
    The transistor of Claim 4, wherein x is from about 0.3 to about 1 and y is from about 0.2 to about 0.9.
  6. 6
    The transistor of Claim 4, wherein the AlGaN based cap layer further includes a third region of Al 2 Ga 1-2 N at an interface between the barrier layer and the AlGaN based cap layer, where z<l and z≠y.
  7. 7
    The transistor of Claim 6, wherein z > y.
  8. 8
    The transistor of Claim 7, wherein z > x.
  9. 9
    The transistor of Claim 6, wherein z < x.
  10. 10
    The transistor of Claim 1 , wherein the channel layer comprises a GaN layer, the barrier layer comprises an AlGaN layer and the cap layer comprises an AlGaN layer.
  11. 11
    A Group Ill-nitride high electron mobility transistor, comprising:a Group Ill-nitride based channel layer;a Group Ill-nitride based barrier layer on the channel layer;and a Group Ill-nitride based cap layer on the barrier layer and having a doped region adjacent a surface of the cap layer that is remote from the barrier layer.
  12. 12
    The transistor of Claim 11, wherein the doped region comprises a region doped with n-type dopants.
  13. 13
    The transistor of Claim 12, wherein the n-type dopants comprise Si, Ge and/or O.
  14. 14
    The transistor of Claim 12, further comprising a gate contact on the cap layer and not recessed into the cap layer and wherein the doped region extends into the cap layer from about 2.5 A to about 50 A.
  15. 15
    The transistor of Claim 12, further comprising a gate contact recessed into the cap layer and wherein the doped region extends into the cap layer from about 20 A to about 5000 A.
  16. 16
    The transistor of Claim 12, wherein the doped region provides a dopant concentration of from about 10 18 to about 10 21 cm "3 .
  17. 17
    The transistor of Claim 12, wherein the doped region comprises one or more delta-doped regions at or near the surface of the cap layer.
  18. 18
    The transistor of Claim 17, wherein the one or more delta doped regions has a dopant concentration of from about 10 11 to about 10 15 cm "2 .
  19. 19
    The transistor of Claim 12, wherein the n-type dopant comprises O and the doped region extends into the cap layer about 20 A.
  20. 20
    The transistor of Claim 11 , wherein the doped region comprises a region doped with p-type dopants.
  21. 21
    The transistor of Claim 20, further comprising a gate contact on the cap layer and not recessed into the cap layer, wherein the doped region extends into the cap layer from about 2.5 A to about 50 A.
  22. 22
    The transistor of Claim 20, further comprising a gate contact recessed into the cap layer and wherein the doped region extends into the cap layer from about 30 A to about 5000 A.
  23. 23
    The transistor of Claim 20, wherein the p-type dopants provide a dopant concentration of from about 10 16 to about 10 22 cm "3 .
  24. 24
    The transistor of Claim 20, wherein the p-type dopants comprise Mg, Be, Zn, Ca and/or C.
  25. 25
    The transistor of Claim 20, wherein the doped region comprises one or more delta-doped regions at or near the surface of the cap layer.
  26. 26
    The transistor of Claim 25, wherein the delta doped region has a dopant concentration of from about lθ" to about 10 15 cm " .
  27. 27
    The transistor of Claim 20, further comprising:a recess in the cap layer;a gate contact in the recess and not directly contacting the cap layer;and wherein the level of p-type dopants provides a conductive region in the cap layer.
  28. 28
    The transistor of Claim 20, further comprising an insulating layer on a sidewall of the recess and wherein the gate contact is on the insulating layer in the recess.
  29. 29
    The transistor of Claim 20, wherein the doped region forms a p-n junction with the cap layer and wherein the gate contact is directly on the doped region.
  30. 30
    The transistor of Claim 11, wherein the doped region comprises a region doped with deep level dopants.
  31. 31
    The transistor of Claim 30, further comprising a gate contact on the cap layer and not recessed into the cap layer, wherein the doped region extends into the cap layer from about 2.5 A to about 100 A.
  32. 32
    The transistor of Claim 30, further comprising a gate contact recessed into the cap layer and wherein the doped region extends into the cap layer from about 30 A to about 5000 A.
  33. 33
    The transistor of Claim 30, wherein the deep level dopants provide a dopant concentration of from about 10 16 to about 10 22 cm "3 .
  34. 34
    The transistor of Claim 30, wherein the deep level dopants comprise Fe, C, V, Cr, Mn, Ni, Co and/or other rare earth elements.
  35. 35
    The transistor of Claim 11, wherein the doped region comprises a first doped region and wherein the cap layer further includes a second doped region between the barrier layer and the first doped region, the second doped region having a dopant concentration less than the dopant concentration of the first doped region.
  36. 36
    The transistor of Claim 35, wherein the second doped region comprises a remainder of the cap layer not in the first doped region.
  37. 37
    The transistor of Claim 11 , wherein cap layer is doped with at least two of n-type dopants, p-type dopants and deep level dopants.
  38. 38
    The transistor of Claim 11 , wherein the channel layer comprises a GaN layer, the barrier layer comprises an AlGaN layer and the cap layer comprises a GaN or an AlGaN layer.
  39. 39
    A method of fabricating a Group Ill-nitride high electron mobility transistor, comprising:forming a Group Ill-nitride based channel layer;forming a Group Ill-nitride based barrier layer on the channel layer;and forming a non-uniform composition AlGaN based cap layer on the barrier layer and having a higher concentration of Al at a surface of the cap layer that is remote from the barrier layer than is present in a region within the AlGaN based cap layer.
  40. 40
    The method of Claim 39, wherein forming a non-uniform composition AlGaN based cap layer comprises:forming a first region of Al x Gai -x N adjacent the surface of the cap layer, where x<l, and forming a second region of Al y Gai -y N within the AlGaN based cap layer, where y<l and y<x.
  41. 41
    A method of fabricating a Group Ill-nitride high electron mobility transistor, comprising:forming a Group Ill-nitride based channel layer;forming a Group Ill-nitride based barrier layer on the channel layer;and forming a Group Ill-nitride based cap layer on the barrier layer and having a doped region adjacent a surface of the cap layer that is remote from the barrier layer.
  42. 42
    The method of Claim 41, wherein the doped region is doped with n- type dopants, p-type dopants and/or deep level dopants.
  43. 43
    A method of passivating a surface of a wide bandgap semiconductor device, comprising forming a graphitic and/or amorphous BN layer on a least a portion of a surface of a region of wide bandgap semiconductor material of the wide- bandgap semiconductor device.
  44. 44
    The method of Claim 43, wherein the wide bandgap semiconductor device comprises a Group Ill-nitride semiconductor device.
  45. 45
    The method of Claim 43, wherein the wide bandgap semiconductor device comprises a GaN based semiconductor device.
  46. 46
    The method of Claim 43, wherein the wide bandgap semiconductor device comprises a Group Ill-nitride high electron mobility transistor.
  47. 47
    The method of Claim 43, wherein forming a graphitic and/or amorphous BN layer is carried out at a temperature less than a decomposition temperature of wide bandgap semiconductor materials in the wide bandgap semiconductor device.
  48. 48
    The method of Claim 43, wherein forming a graphitic and/or amorphous BN layer is carried out at a temperature less than about 1100 °C.
  49. 49
    The method of Claim 43, wherein forming a graphitic and/or amorphous BN layer is carried out at a temperature less than about 1000 °C.
  50. 50
    The method of Claim 43, wherein forming a graphitic and/or amorphous BN layer is carried out at a temperature less than about 900 °C.
  51. 51
    The method of Claim 43, wherein the BN layer is formed to be non- single crystal.
  52. 52
    The method of Claim 43, wherein the graphitic and/or amorphous BN layer is formed to a thickness of from about 3 A to about 1 μm.
  53. 53
    The method of Claim 43, wherein forming a graphitic and/or amorphous BN layer comprises flowing TEB and NH 3 with a carrier gas.
  54. 54
    A passivation structure for a wide bandgap semiconductor device comprising a layer of graphitic and/or amorphous BN on a least a portion of a surface of a region of wide bandgap semiconductor material of the wide-bandgap semiconductor device.
  55. 55
    The passivation structure of Claim 54, wherein the wide bandgap semiconductor device comprises a Group Ill-nitride semiconductor device.
  56. 56
    A method of passivating a surface of a Group Ill-nitride semiconductor device, comprising forming a SiC layer on a least a portion of a surface of a region of Group Ill-nitride semiconductor material of the Group Ill-nitride semiconductor device.
  57. 57
    The method of Claim 56, wherein the Group Ill-nitride semiconductor device comprises a GaN based semiconductor device.
  58. 58
    The method of Claim 56, wherein the Group Ill-nitride semiconductor device comprises a Group Ill-nitride high electron mobility transistor.
  59. 59
    The method of Claim 56, wherein forming a SiC layer is carried out at a temperature less than a decomposition temperature of Group Ill-nitride semiconductor materials in the Group Ill-nitride semiconductor device.
  60. 60
    The method of Claim 56, wherein forming a SiC layer is carried out at a temperature less than about 1100 0 C.
  61. 61
    The method of Claim 56, wherein forming a SiC layer is carried out at a temperature less than about 1000 °C.
  62. 62
    The method of Claim 56, wherein forming a SiC layer is carried out at a temperature less than about 900 °C.
  63. 63
    The method of Claim 56, wherein the SiC layer is formed to be non- single crystal.
  64. 64
    The method of Claim 56, wherein forming a SiC layer comprises forming a 3 C SiC layer.
  65. 65
    The method of Claim 56, wherein the SiC layer is formed to a thickness of from about 3 A to about 1 μm.
  66. 66
    The method of Claim 56, wherein the SiC layer is p-type SiC.
  67. 67
    The method of Claim 56, wherein the SiC layer is insulating SiC.
  68. 68
    A passivation structure for a Group Ill-nitride semiconductor device comprising a layer of SiC on a least a portion of a surface of a region of Group III- nitride semiconductor material of the Group Ill-nitride semiconductor device.
  69. 69
    The passivation structure of Claim 68, wherein the Group Ill-nitride semiconductor device comprises a GaN based semiconductor device.
  70. 70
    The passivation structure of Claim 68, wherein the SiC layer is p-type SiC.
  71. 71
    The passivation structure of Claim 68, wherein the SiC layer is insulating SiC.
  72. 72
    A method of fabricating a passivation structure for a Group Ill-nitride semiconductor device comprising:forming a passivation layer directly on a least a portion of a surface of a region of Group Ill-nitride semiconductor material of the Group Ill-nitride semiconductor device;and annealing the passivation layer in an oxygen containing environment.
  73. 73
    The method of Claim 72, wherein the passivation layer comprises SiN and/or MgN.
  74. 74
    The method of Claim 72, wherein the passivation layer comprises BN and/or SiC.
  75. 75
    The method of Claim 72, wherein the passivation layer comprises SiO 2 , MgO, Al 2 O 3 , Sc 2 O 3 and/or AlN.
  76. 76
    The method of Claim 72, wherein the annealing is carried out at a temperature of from about 100 0 C to about 1100 °C and for a time of from about ten seconds to about one hour.
  77. 77
    The method of Claim 72, wherein the oxygen containing environment comprises O 2 , O 3 , CO 2 , CO, N 2 O, D 2 O and/or NO.
  78. 78
    The method of Claim 72, wherein the annealing is performed at a temperature and for a time insufficient to oxidize a structure underlying the passivation layer but sufficient to remove at least some hydrogen from the passivation layer.
  79. 79
    The method of Claim 72, wherein the Group Ill-nitride semiconductor material comprises a GaN based material.
  80. 80
    A method of fabricating a passivation structure for a Group Ill-nitride semiconductor device comprising:forming a passivation layer directly on a least a portion of a surface of a region of Group Ill-nitride semiconductor material of the Group Ill-nitride semiconductor device;and annealing the passivation layer in D 2 and/or D 2 O.
  81. 81
    The method of Claim 80, wherein the passivation layer comprises SiN and/or MgN.
  82. 82
    The method of Claim 80, wherein the passivation layer comprises BN and/or SiC.
  83. 83
    The method of Claim 80, wherein the passivation layer comprises SiO 2 , MgO, Al 2 O 3 , Sc 2 O 3 and/or AlN.
  84. 84
    The method of Claim 80, wherein the annealing is performed at a temperature and for a time insufficient to oxidize a structure underlying the passivation layer but sufficient to remove at least some hydrogen from the passivation layer or replace at least some hydrogen in the passivation layer with deuterium.
  85. 85
    The method of Claim 80, wherein the Group Ill-nitride semiconductor material comprises a GaN based material.
  86. 86
    A Group Ill-nitride high electron mobility transistor, comprising:a Group Ill-nitride based channel layer;a Group Ill-nitride based barrier layer on the channel layer;and a AlN cap layer on the barrier layer.
  87. 87
    The transistor of Claim 86, further comprising a gate contact recessed into the AlN cap layer and wherein the AlN cap layer has a thickness of from about 10 to about 5000 A.
  88. 88
    The transistor of Claim 86, further comprising a gate contact on the AlN cap layer and not recessed into the AlN cap layer and wherein the AlN cap layer has a thickness of from about 2 A to about 50 A.
  89. 89
    The transistor of Claim 86, wherein the channel layer comprises a GaN layer and the barrier layer comprises an AlGaN layer.
  90. 90
    The transistor of Claim 86, further comprising at least one Group III- nitride layer disposed between the AlN cap layer and the barrier layer.
  91. 91
    The transistor of Claim 86, wherein the AlN cap layer is non-single crystalline.
  92. 92
    The transistor of Claim 86, wherein a crystal structure of the AlN cap layer is not coherent with a crystal structure of a layer on which the AlN cap layer is formed.
  93. 93
    A method of fabricating a Group Ill-nitride high electron mobility transistor, comprising:forming a Group Ill-nitride based channel layer;forming a Group Ill-nitride based barrier layer on the channel layer;and forming an AlN cap layer on the barrier layer.
  94. 94
    A Group Ill-nitride high electron mobility transistor, comprising:a Group Ill-nitride based channel layer;a Group Ill-nitride based barrier layer on the channel layer;a protective layer on the barrier layer;a gate contact on the barrier layer;and ohmic contacts υn the protective layer.
  95. 95
    The transistor of Claim 94, wherein the protective layer comprises SiN.
  96. 96
    The transistor of Claim 94, wherein the protective layer comprises BN.
  97. 97
    The transistor of Claim 94, wherein the protective layer comprises MgN.
  98. 98
    The transistor of Claim 94, wherein the protective layer comprises SiO 2 , MgO, Al 2 O 3 , Sc 2 O 3 and/or AlN.
  99. 99
    The transistor of Claim 94, wherein the protective layer has a thickness of about one monolayer.
  100. 100
    The transistor of Claim 94, wherein the protective layer comprises multiple layers.
  101. 101
    The transistor of Claim 100, wherein the multiple layers comprise a layer of SiN and a layer of AlN.
  102. 102
    The transistor of Claim 94, wherein the protective layer has a thickness of from about 1 A to about 10 A.
  103. 103
    The transistor of Claim 94, wherein the gate contact is on the protective layer.
  104. 104
    The transistor of Claim 94, wherein the ohmic contacts are directly on the protective layer.
  105. 105
    A method of fabricating a Group Ill-nitride high electron mobility transistor, comprising:forming a Group Ill-nitride based channel layer;forming a Group Ill-nitride based barrier layer on the channel layer;forming a protective layer on the barrier layer;forming a gate contact on the barrier layer;and forming ohmic contacts on the protective layer.
  106. 106
    The method of Claim 105, wherein forming the protective layer is carried out in-situ with forming the barrier layer.
  107. 107
    The method of Claim 105, wherein forming the protective layer comprises forming a layer comprising SiN, BN and/or MgN.
  108. 108
    The method of Claim 105, wherein the protective layer is formed to a thickness of about one monolayer.
  109. 109
    The method of Claim 105, wherein forming the protective layer comprises forming multiple layers.
  110. 110
    The method of Claim 109, wherein forming multiple layers comprises forming a layer of SiN and forming a layer of AlN.
  111. 111
    The method of Claim 105, wherein the protective layer is formed to a thickness of from about 1 A to about 10 A.
Independent claims111