EP2807673A2

Light-emitting dies incorporating wavelength-conversion materials and related methods

Abstract

This record has no abstract on file.

Term

Projected expiry 24 January 2033.

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1 claim: 1 independent, 0 dependent

  1. 1
    Claims of equivalent WO 2013112691 A2 1. A method of forming a composite wafer comprising a plurality of discrete semiconductor dies suspended in a cured binder, the method comprising:disposing the plurality of discrete semiconductor dies on a mold substrate, each semiconductor die having at least two spaced-apart contacts adjacent the mold substrate;coating the plurality of semiconductor dies with a binder;and curing the binder to form the composite wafer, wherein the contacts of each semiconductor die remain at least partially uncoated by the binder. 2. The method of claim 1, further comprising separating the composite wafer into a plurality of discrete portions each comprising at least one semiconductor die coated with cured binder. 3. The method of claim 2, wherein after separation a volume of binder surrounding each semiconductor die is substantially equal. 4. The method of claim 2, wherein separating the composite wafer comprises at least one of laser cutting, knife cutting, rotary knife cutting, shearing, waterjet cutting, abrasive waterjet cutting, die cutting, or sawing. 5. The method of claim 2, wherein each discrete portion of the composite wafer contains only one semiconductor die. 6. The method of claim 2, wherein each discrete portion of the composite wafer is a rectangular solid having approximately 90° corners between adjacent faces thereof. 7. The method of claim 2, further comprising, after formation of the composite wafer, (i) electrically testing at least some of the semiconductor dies, and (ii) binning the separated portions based on the electrical testing. 8. The method of claim 2, further comprising electrically coupling the contacts of the at least one semiconductor die in one of the discrete portions to spaced-apart conductive traces on a substrate. 9. The method of claim 8, wherein electrically coupling the contacts to the conductive traces comprises adhering the contacts to the conductive traces with a conductive adhesive. 10. The method of claim 8, further comprising electrically connecting the at least one semiconductor die to circuitry for powering the at least one semiconductor die. 1 1. The method of claim 2, further comprising, after separating the composite wafer, removing additional material from each of the discrete portions, whereby each portion has a desired shape thereafter. 12. The method of claim 1, further comprising separating the composite wafer from the mold substrate. 13. The method of claim 1, further comprising: disposing a second substrate in contact with the plurality of semiconductor dies coated with binder;and removing the mold substrate from the plurality of semiconductor dies coated with binder, the plurality of semiconductor dies coated with binder remaining attached to the second substrate. 14. The method of claim 13, further comprising separating the composite wafer from the second substrate. 15. The method of claim 1, wherein, before curing the binder, the contacts of the plurality of semiconductor dies are at least partially embedded within the mold substrate. 16. The method of claim 15, wherein the contacts of the plurality of semiconductor dies are embedded within the mold substrate by at least 2 μηι. 17. The method of claim 1, wherein, after curing the binder, at least a portion of each of the contacts of the plurality of semiconductor dies protrudes from the cured binder. 18. The method of claim 1, wherein, after curing the binder, at least a portion of each semiconductor die proximate the contacts thereof protrudes from the cured binder. The method of claim 1, wherein the contacts of each semiconductor die remain substantially entirely uncoated by binder. 20. The method of claim 1, wherein the binder comprises at least one of silicone or epoxy. 21. The method of claim 1 , wherein coating the plurality of semiconductor dies with the binder comprises: dispensing the binder into a mold;and disposing the mold substrate over the mold, whereby the plurality of semiconductor dies are suspended within the binder. 22. The method of claim 21, wherein curing the binder comprises: at least partially curing the binder;and thereafter, removing the mold substrate from the mold. 23. The method of claim 22, wherein (i) a surface of the mold opposite the mold substrate comprises a texture, (ii) at least a portion of the cured binder comprises the texture after the mold substrate is removed from the mold, and (iii) the texture is configured to enhance light extraction from the cured binder. 24. The method of claim 22, further comprising applying a texture for enhancing light extraction from the cured binder to at least a portion of a surface of the binder opposite the mold substrate after removing the mold substrate from the mold. 25. The method of claim 21 , wherein (i) the mold comprises a plurality of discrete compartments in which the binder is disposed, and (ii) one or more semiconductor dies are suspended within or above each compartment prior to curing the binder. 26. The method of claim 25, wherein each compartment imparts a complementary shape to a portion of the binder, the complementary shapes being substantially identical to each other. 27. The method of claim 21, wherein the mold substrate defines one or more openings therethrough. 28. The method of claim 27, wherein at least a portion of the binder is dispensed into the mold through at least one said opening. 29. The method of claim 27, wherein a portion of the binder flows through at least one said opening when the mold substrate is disposed over the mold. 30. The method of claim 1, wherein coating the plurality of semiconductor dies with the binder comprises dispensing the binder over the mold substrate, the binder being contained over the mold substrate by one or more barriers extending above a surface of the mold substrate. 31. The method of claim 30, further comprising applying a texture for enhancing light extraction from the cured binder to at least a portion of a surface of the binder opposite the mold substrate, whereby the cured binder retains the texture. 32. The method of claim 30, wherein curing the binder comprises: at least partially curing the binder;and thereafter, removing the mold substrate from the plurality of semiconductor dies. 33. The method of claim 30, further comprising disposing a mold cover over and in contact with at least a portion of the binder. 34. The method of claim 33, wherein (i) the mold cover comprises a plurality of discrete compartments and (ii) one or more semiconductor dies are suspended within or beneath each compartment prior to curing the binder. 35. The method of claim 34, wherein each compartment imparts a complementary shape to a portion of the binder, the complementary shapes being substantially identical to each other. 36. The method of claim 1, wherein the binder contains a wavelength-conversion material. 37. The method of claim 36, wherein the wavelength-conversion material comprises at least one of a phosphor or quantum dots. 38. The method of claim 1, wherein each semiconductor die comprises a light-emitting semiconductor die. 39. The method of claim 38, wherein the binder is transparent to a wavelength of light emitted by the light-emitting semiconductor dies. 40. The method of claim 38, wherein each light-emitting semiconductor die comprises a bare- die light-emitting diode. 41. The method of claim 38, wherein the light-emitting semiconductor dies each comprise a semiconductor material comprising at least one of GaAs, AlAs, InAs, GaP, AlP, InP, ZnO, CdSe, CdTe, ZnTe, GaN, A1N, InN, silicon, or an alloy or mixture thereof. 42. The method of claim 38, wherein the binder contains a wavelength-conversion material for absorption of at least a portion of light emitted from the light-emitting semiconductor dies and emission of converted light having a different wavelength, converted light and unconverted light emitted by the light-emitting semiconductor dies combining to form substantially white light. 43. The method of claim 42, wherein the substantially white light has a correlated color temperature in the range of 2000 K to 10,000 K. 44. The method of claim 42, wherein the substantially white light has a color temperature variation less than four MacAdam ellipses across the composite wafer. 45. The method of claim 42, wherein the substantially white light has a color temperature variation less than two MacAdam ellipses across the composite wafer. 46. The method of claim 1, wherein the composite wafer has a first surface and a second surface opposite the first surface, and the first and second surface are substantially flat and parallel. 47. The method of claim 46, wherein the composite wafer has a substantially uniform thickness with a thickness variation less than 10%. 48. The method of claim 46, wherein the composite wafer has a substantially uniform thickness with a thickness variation less than 5%. 49. The method of claim 46, wherein the composite wafer has a substantially uniform thickness between 5 μιη and 4000 μιη. The method of claim 46, wherein a dimension of the composite wafer perpendicular to the thickness is between 5 mm and 1000 mm. 51. The method of claim 1 , wherein a spacing between neighboring semiconductor dies is substantially constant across the composite wafer. 52. The method of claim 51, wherein the spacing is in the range of about 25 μιη to about 10,000 μιη. 53. The method of claim 1, wherein a thickness of the binder above each of the semiconductor dies is in the range of about 25 μιη to about 4000 μιη. 54. The method of claim 1, wherein a thickness of the binder above each of the semiconductor dies is the same to within 5%. 55. The method of claim 1, wherein the plurality of semiconductor dies comprises at least 100 semiconductor dies. 56. The method of claim 1, wherein the plurality of semiconductor dies comprises at least 1000 semiconductor dies. 57. The method of claim 1, wherein the semiconductor dies are arranged in an array having substantially equal distances between semiconductor dies in at least a first direction. 58. The method of claim 57, wherein the array has substantially equal distances between semiconductor dies in at least a second direction different from the first direction. 59. The method of claim 1, wherein the semiconductor dies are arranged in a regular periodic array. 60. The method of claim 1, wherein a release material is disposed over at least a portion of the binder. 61. The method of claim 60, wherein the release material comprises a mold-release film. 62. The method of claim 61, wherein the mold release film is textured with a texture for enhancing light extraction from the cured binder. 63. The method of claim 1, wherein the mold substrate comprises at least one of glass, metal, silicone, fiberglass, ceramic, water-soluble tape, thermal-release tape, UV-release tape, polyethylene terephthalate, polyethylene naphthalate, plastic film, tape, adhesive, acrylic, polycarbonate, a polymer, or polytetrafluoroethylene. 64. The method of claim 1, wherein curing the binder comprises exposure to at least one of heat, air, moisture, superatmospheric pressure, or ultraviolet radiation. 65. The method of claim 1, wherein disposing the plurality of discrete semiconductor dies on the mold substrate comprises application of at least one of (i) an adhesive force, (ii) a magnetic force, or (iii) vacuum. 66. The method of claim 1, further comprising, prior to disposing the plurality of discrete semiconductor dies on the mold substrate, (i) testing a group of semiconductor dies to identify semiconductor dies having substantially equal characteristics, and (ii) selecting the plurality of semiconductor dies from the identified semiconductor dies. 67. The method of claim 1, wherein the plurality of semiconductor dies are disposed within indentations in the mold substrate. 68. The method of claim 1, wherein (i) the mold substrate comprises at least one of a vacuum chuck or an electrostatic chuck, and (ii) positions of the semiconductor dies are maintained at least in part by vacuum or electrostatic force. 69. The method of claim 1, wherein coating the plurality of semiconductor dies with the binder comprises controlling an amount of binder dispensed over the semiconductor dies in response to a feedback signal. 70. The method of claim 1 , further comprising removing the composite wafer from the mold substrate by exposure to at least one of heat or ultraviolet radiation. 71. The method of claim 1 , wherein the binder contains therewithin at least one of (i) fumed silica, (ii) fumed alumina, or (iii) T1O2. 72. The method of claim 1, wherein the binder comprises a plurality of discrete regions, at least one of which comprises the binder and at least one wavelength-conversion material. 73. The method of claim 1, wherein (i) at least one semiconductor die comprises one or more active layers over a substrate, and (ii) the substrate is partially or completely removed before coating with the binder. 74. The method of claim 73, wherein the substrate of the at least one semiconductor die is partially or completely removed after disposing the at least one semiconductor die on the mold substrate. 75. The method of claim 1, wherein each of the semiconductor dies comprises a light-detecting semiconductor die. 76. The method of claim 75, wherein the binder is transparent to a wavelength of light detected by the light-detecting semiconductor dies. 77. The method of claim 1, further comprising associating an optical element with one or more of the semiconductor dies. 78. The method of claim 1, further comprising disposing an array of optical elements on the binder prior to curing. 79. The method of claim 78, wherein curing the binder adheres the array of optical elements to the cured binder. 80. The method of claim 78, wherein the composite wafer comprises the array of optical elements, and further comprising separating the composite wafer into discrete portions each comprising at least one optical element. 81. The method of claim 1, further comprising forming a reflecting layer over or within at least a portion of the composite wafer. 82. The method of claim 81, wherein the reflecting layer comprises a reflecting film. 83. The method of claim 81, wherein the reflecting layer comprises a plurality of particles. 84. The method of claim 83, wherein the plurality of particles comprises at least one of fumed silica particles, fumed alumina particles, or T1O2 particles. 85. A method of forming a composite wafer comprising a plurality of discrete semiconductor dies suspended in a cured binder, the method comprising: disposing the plurality of discrete semiconductor dies on a mold substrate, each semiconductor die having at least two spaced-apart contacts opposite the mold substrate;coating the plurality of semiconductor dies with a first binder, the contacts of each semiconductor die remaining at least partially uncoated;at least partially curing the first binder;disposing a second substrate in contact with the plurality of semiconductor dies coated with at least partially cured first binder;thereafter, removing the mold substrate from the plurality of semiconductor dies, thereby exposing a portion of each semiconductor die uncoated by the first binder, the plurality of semiconductor dies remaining attached to the second substrate;coating at least the uncoated portion of each of the plurality of semiconductor dies with a second binder;and curing the second binder to form the composite wafer. 86. The method of claim 85, wherein the first binder and the second binder comprise the same material. 87. The method of claim 85, further comprising separating the composite wafer into a plurality of discrete portions each comprising at least one semiconductor die coated with cured first binder and cured second binder. 88. The method of claim 85, further comprising separating the composite wafer from the second substrate. 89. The method of claim 85, wherein at least a portion of each of the contacts of the plurality of semiconductor dies of the composite wafer protrudes from at least one of cured first binder or cured second binder. 90. The method of claim 85, wherein at least a portion of each semiconductor die proximate the contacts thereof protrudes from at least one of cured first binder or cured second binder. 91. The method of claim 85, wherein at least one of the first binder or the second binder comprises at least one of silicone or epoxy. 92. The method of claim 85, wherein coating at least the uncoated portion of each of the plurality of semiconductor dies with the second binder comprises: dispensing the second binder into a mold;and disposing the mold substrate over the mold, whereby the plurality of semiconductor dies are disposed in contact with the second binder. 93. The method of claim 92, wherein curing the second binder comprises: at least partially curing the second binder;and thereafter, removing the mold substrate from the mold. 94. The method of claim 93, wherein (i) a surface of the mold opposite the mold substrate comprises a texture, (ii) at least a portion of the cured second binder comprises the texture after the mold substrate is removed from the mold, and (iii) the texture is configured to enhance light extraction from the cured second binder. 95. The method of claim 93, further comprising applying a texture for enhancing light extraction from the cured second binder to at least a portion of a surface of the second binder opposite the mold substrate after removing the mold substrate from the mold. 96. The method of claim 92, wherein (i) the mold comprises a plurality of discrete compartments in which the second binder is disposed, and (ii) one or more semiconductor dies are suspended within or above each compartment prior to curing the second binder. 97. The method of claim 96, wherein each compartment imparts a complementary shape to a portion of the second binder, the complementary shapes being substantially identical to each other. 98. The method of claim 85, wherein coating at least the uncoated portion of each of the plurality of semiconductor dies with the second binder comprises dispensing the second binder over the mold substrate, the second binder being contained over the mold substrate by one or more barriers extending above a surface of the mold substrate. 99. The method of claim 98, further comprising applying a texture for enhancing light extraction from the cured second binder to at least a portion of a surface of the second binder opposite the mold substrate, whereby the cured second binder retains the texture. 100. The method of claim 98, wherein curing the second binder comprises: at least partially curing the second binder;and thereafter, removing the mold substrate from the plurality of semiconductor dies. 101. The method of claim 98, further comprising disposing a mold cover over and in contact with at least a portion of the second binder. 102. The method of claim 101, wherein (i) the mold cover comprises a plurality of discrete compartments, and (ii) one or more semiconductor dies are suspended within or beneath each compartment prior to curing the second binder. 103. The method of claim 102, wherein each compartment imparts a complementary shape to a portion of the second binder, the complementary shapes being substantially identical to each other. 104. The method of claim 85, wherein at least one of the first binder or the second binder contains a wavelength-conversion material. 105. The method of claim 85, wherein each semiconductor die comprises a light-emitting semiconductor die. 106. The method of claim 105, wherein at least one of the first binder or the second binder is transparent to a wavelength of light emitted by the light-emitting semiconductor dies. 107. The method of claim 105, wherein at least one of the first binder or the second binder contains a wavelength-conversion material for absorption of at least a portion of light emitted from the light-emitting semiconductor dies and emission of converted light having a different wavelength, converted light and unconverted light emitted by the light-emitting semiconductor dies combining to form substantially white light. 108. The method of claim 107, wherein the substantially white light has a color temperature variation less than four MacAdam ellipses across the composite wafer. 109. The method of claim 107, wherein the substantially white light has a color temperature variation less than two MacAdam ellipses across the composite wafer. 1 10. A method of forming electronic devices, the method comprising: disposing a plurality of discrete semiconductor dies on a mold substrate, each semiconductor die having at least two spaced-apart contacts adjacent the mold substrate;coating the plurality of semiconductor dies with a binder;curing the binder to form a composite wafer comprising the plurality of semiconductor dies suspended in the cured binder, the contacts of each semiconductor die remaining at least partially uncoated with binder;separating the composite wafer into a plurality of discrete portions each comprising at least one semiconductor die suspended in cured binder;and thereafter, removing the discrete portions of the composite wafer from the mold substrate. 11 1. The method of claim 1 10, wherein (a) the binder comprises (i) at least one of silicone or epoxy and (ii) a wavelength-conversion material, and (b) each of the semiconductor dies comprises a light-emitting diode. 1 12. The method of claim 1 11, wherein the wavelength-conversion material absorbs at least a portion of light emitted from a light-emitting semiconductor die and emits converted light having a different wavelength, converted light and unconverted light emitted by the light-emitting semiconductor die combining to form substantially white light. 1 13. The method of claim 1 10, wherein, after curing the binder, at least a portion of each of the contacts of the plurality of semiconductor dies protrudes from the cured binder. 1 14. The method of claim 1 10, wherein, after curing the binder, at least a portion of each semiconductor die proximate the contacts thereof protrudes from the cured binder. 1 15. A method of forming electronic devices, the method comprising: disposing a plurality of discrete semiconductor dies on a mold substrate, each semiconductor die having at least two spaced-apart contacts opposite the mold substrate;coating the plurality of semiconductor dies with a first binder, the contacts of each semiconductor die remaining at least partially uncoated;at least partially curing the first binder;disposing a second substrate in contact with the plurality of semiconductor dies coated with at least partially cured first binder;thereafter, removing the mold substrate from the plurality of semiconductor dies, thereby exposing a portion of each semiconductor die uncoated by the first binder, the plurality of semiconductor dies remaining attached to the second substrate;coating at least the uncoated portion of each of the plurality of semiconductor dies with a second binder;curing the second binder to form a composite wafer comprising the plurality of semiconductor dies and cured first and second binders;separating the composite wafer into a plurality of discrete portions each comprising at least one semiconductor die and cured first and second binders;and thereafter, removing the discrete portions of the composite wafer from the mold substrate. 1 16. The method of claim 115, wherein the first binder and the second binder comprise the same material. 117. The method of claim 1 15, wherein (a) at least one of the first binder or the second binder comprises (i) at least one of silicone or epoxy and (ii) a wavelength-conversion material, and (b) each of the semiconductor dies comprises a light-emitting diode. 1 18. The method of claim 1 17, wherein the wavelength-conversion material absorbs at least a portion of light emitted from a light-emitting semiconductor die and emits converted light having a different wavelength, converted light and unconverted light emitted by the light-emitting semiconductor die combining to form substantially white light. 119. The method of claim 1 15, wherein, after curing the second binder, at least a portion of each of the contacts of the plurality of semiconductor dies protrudes from at least one of cured first binder or cured second binder. 120. The method of claim 1 15, wherein, after curing the second binder, at least a portion of each semiconductor die proximate the contacts thereof protrudes from at least one of cured first binder or cured second binder. 121. A method of forming a composite wafer comprising a plurality of discrete semiconductor dies suspended in a cured binder, the method comprising: disposing the plurality of discrete semiconductor dies on a mold substrate, each semiconductor die having at least two spaced-apart contacts;coating the plurality of semiconductor dies with a binder;curing the binder to form the composite wafer;and removing at least a portion of the binder proximate the at least two contacts to expose at least portions of each of the at least two contacts. 122. The method of claim 121, further comprising: separating the composite wafer into a plurality of discrete portions each comprising at least one semiconductor die suspended in cured binder;and thereafter, removing the discrete portions of the composite wafer from the mold substrate. 123. An electronic device comprising: a solid shaped volume of a polymeric binder;suspended within the binder, a semiconductor die having a first face, a second face opposite the first face, and at least one sidewall spanning the first and second faces;and disposed on the first face of the semiconductor die, at least two spaced-apart contacts each having a free terminal end (i) not covered by the binder and (ii) available for electrical connection. 124. The electronic device of claim 123, wherein at least portions of the contacts protrude from the binder. 125. The electronic device of claim 123, wherein at least a portion of each said sidewall protrudes from the binder. 126. The electronic device of claim 123, wherein the binder defines a rectangular solid having approximately 90° corners between adjacent faces thereof. 127. The electronic device of claim 123, wherein the binder comprises at least one of silicone or epoxy. 128. The electronic device of claim 123, further comprising one or more additional semiconductor dies suspended within the binder. 129. The electronic device of claim 123, wherein the binder contains a wavelength-conversion material therein. 130. The electronic device claim 129, wherein the wavelength material comprises at least one of a phosphor or quantum dots. 131. The electronic device of claim 123, wherein the semiconductor die comprises a light- emitting element. 132. The electronic device of claim 131, wherein the binder is transparent to a wavelength of light emitted by the light-emitting element. 133. The electronic device of claim 131, wherein the semiconductor die comprises a bare-die light-emitting diode. 134. The electronic device of claim 131, wherein the light-emitting element comprises a semiconductor material comprising at least one of GaAs, AlAs, InAs, GaP, AlP, InP, ZnO, CdSe, CdTe, ZnTe, GaN, A1N, InN, silicon, or an alloy or mixture thereof. 135. The electronic device of claim 131, wherein the binder contains a wavelength-conversion material for absorption of at least a portion of light emitted from the light-emitting element and emission of converted light having a different wavelength, converted light and unconverted light emitted by the light-emitting element combining to form substantially white light. 136. The electronic device of claim 135, wherein the substantially white light has a correlated color temperature in the range of 2000 K to 10,000 K. 137. The electronic device of claim 123, wherein the binder has a thickness between 5 μιη and 4000 μιη. 138. The electronic device of claim 123, wherein a dimension of the binder perpendicular to the thickness is between 25 μιη and 50 mm. 139. The electronic device of claim 123, wherein at least a portion of the surface of the binder comprises a texture for enhancing extraction of light from the binder. 140. The electronic device of claim 123, wherein the semiconductor die comprises a light- detecting element. 141. The electronic device of claim 140, wherein the binder is transparent to a wavelength of light detected by the light-detecting element. 142. The electronic device of claim 123, further comprising an optical element positioned to receive light from or transmit light to the semiconductor die. 143. The electronic device of claim 123, further comprising a reflecting layer over or within at least a portion of the binder. 144. The electronic device of claim 143, wherein the reflecting layer comprises at least one of (i) a reflecting film or (ii) a plurality of particles. 145. The electronic device of claim 143, wherein (a) the semiconductor die comprises a light- emitting element or a light-detecting element, and (b) the reflecting layer has a reflectivity of at least 25% to a wavelength of light (i) emitted or detected by the semiconductor die or (ii) emitted by the binder. 146. The electronic device of claim 123, wherein the binder comprises a plurality of discrete regions, at least one of which comprises the binder and at least one wavelength-conversion material. 147. The electronic device of claim 123, wherein the semiconductor die comprises one or more active semiconductor layers not disposed on a semiconductor substrate. 148. The electronic device of claim 123, further comprising one or more alignment marks on the surface of the binder for at least one of alignment or orientation of the semiconductor die. 149. A composite wafer comprising: a solid volume of a polymeric binder having a first surface and a second surface opposite the first surface;suspended within the binder, a plurality of semiconductor dies each having a first face, a second face opposite the first face, and at least one sidewall spanning the first and second faces;and disposed on the first face of each semiconductor die, at least two spaced-apart contacts each having a free terminal end (i) not covered by the binder and (ii) available for electrical connection. 150. The composite wafer of claim 149, wherein at least portions of the contacts of the semiconductor dies protrude from the binder. 151. The composite wafer of claim 149, wherein at least a portion of each said sidewall of each of the semiconductor dies protrudes from the first surface of the binder. 152. The composite wafer of claim 149, wherein the binder comprises at least one of silicone or epoxy. 153. The composite wafer of claim 149, wherein the binder contains a wavelength-conversion material therein. 154. The composite wafer of claim 153, wherein the wavelength material comprises at least one of a phosphor or quantum dots. 155. The composite wafer of claim 149, wherein each semiconductor die comprises a light- emitting element. 156. The composite wafer of claim 155, wherein the binder is transparent to a wavelength of light emitted by the semiconductor dies. 157. The composite wafer of claim 155, wherein each semiconductor die comprises a bare-die light-emitting diode. 158. The composite wafer of claim 155, wherein each semiconductor die comprises a semiconductor material comprising at least one of GaAs, AlAs, InAs, GaP, AlP, InP, ZnO, CdSe, CdTe, ZnTe, GaN, A1N, InN, silicon, or an alloy or mixture thereof. 159. The composite wafer of claim 155, wherein the binder contains a wavelength-conversion material for absorption of at least a portion of light emitted from the light-emitting elements and emission of converted light having a different wavelength, converted light and unconverted light emitted by the light-emitting elements combining to form substantially white light. 160. The composite wafer of claim 159, wherein the substantially white light has a correlated color temperature in the range of 2000 K to 10,000 K. 161. The composite wafer of claim 159, wherein the substantially white light has a variation in color temperature of less than four MacAdam ellipses across the composite wafer. 162. The composite wafer of claim 159, wherein the substantially white light has a variation in color temperature of less than two MacAdam ellipses across the composite wafer. 163. The composite wafer of claim 149, wherein the first and second surfaces of the binder are substantially flat and parallel. 164. The composite wafer of claim 149, wherein the binder has a substantially uniform thickness with a thickness variation less than 10%. 165. The composite wafer of claim 149, wherein the binder has a substantially uniform thickness with a thickness variation less than 5%. 166. The composite wafer of claim 149, wherein the binder has a thickness between 15 μιη and 4000 μιη. 167. The composite wafer of claim 149, wherein a dimension of the binder perpendicular to the thickness is between 100 μιη and 1000 mm. 168. The composite wafer of claim 149, wherein a spacing between each pair of the plurality of semiconductor dies is substantially the same. 169. The composite wafer of claim 149, wherein a spacing between each pair of the plurality of semiconductor dies is in the range of about 25 μιη to about 10,000 μιη. 170. The composite wafer of claim 149, wherein a thickness of the binder above each of the plurality of semiconductor dies is substantially the same. 171. The composite wafer of claim 149, wherein a thickness of the binder above each of the plurality of semiconductor dies is the same to within 5%. 172. The composite wafer of claim 149, wherein the plurality of semiconductor dies comprises at least 500 semiconductor dies. 173. The composite wafer of claim 149, wherein the plurality of semiconductor dies comprises at least 2000 semiconductor dies. 174. The composite wafer of claim 149, wherein the semiconductor dies are arranged in an array having substantially equal distances between semiconductor dies in at least a first direction. 175. The composite wafer of claim 174, wherein the array of semiconductor dies has substantially equal distances between semiconductor dies in a second direction different from the first direction. 176. The composite wafer of claim 149, wherein the semiconductor dies are arranged in a regular periodic array. 177. The composite wafer of claim 149, wherein at least a portion of the surface of the binder is textured with a texture for enhancing light extraction from the binder. 178. The composite wafer of claim 149, wherein each semiconductor die comprises a light- detecting element. 179. The composite wafer of claim 178, wherein the binder is transparent to a wavelength of light detected by the semiconductor dies. 180. The composite wafer of claim 178, wherein each light-detecting element comprises a photovoltaic die. 181. The composite wafer of claim 149, further comprising at least one optical element positioned to receive light from or transmit light to at least one of the semiconductor dies. 182. The composite wafer of claim 181, wherein the at least one optical element comprises a plurality of discrete optical elements each associated with at least one semiconductor die. 183. The composite wafer of claim 149, further comprising a reflecting layer over or within at least a portion of the binder. 184. The composite wafer of claim 183, wherein the reflecting layer comprises at least one of (i) a reflecting film or (ii) a plurality of particles. 185. The composite wafer of claim 183, wherein (a) each semiconductor die comprises a light- emitting element or a light-detecting element, and (b) the reflecting layer has a reflectivity of at least 25% to a wavelength of light (i) emitted or detected by the semiconductor dies or (ii) emitted by the binder. 186. The composite wafer of claim 149, wherein the binder comprises a plurality of discrete regions, at least one of which comprises the binder and at least one wavelength-conversion material. 187. The composite wafer of claim 149, wherein each semiconductor die comprises one or more active semiconductor layers not disposed on a semiconductor substrate. 188. The composite wafer of claim 149, further comprising one or more alignment marks on the first surface or the second surface of the binder. 189. The composite wafer of claim 149, wherein the binder comprises a plurality of shaped regions, each shaped region (i) associated with at least one semiconductor die and (ii) having a shape substantially identical to shapes of the other shaped regions. 190. An electronic device comprising: a substrate having first and second conductive traces thereon, the first and second conductive traces being separated on the substrate by a gap therebetween;disposed over the gap, a semiconductor die having a first face, a second face opposite the first face, at least one sidewall spanning the first and second faces, and two spaced-apart contacts on the first face, the contacts each being electrically coupled to a different conductive trace;and encasing the second face and at least a portion of each said sidewall of the semiconductor die, a solid polymeric binder defining a rectangular solid having approximately 90° corners between adjacent faces thereof, wherein at least a portion of each of the contacts is not covered by the binder. 191. The electronic device of claim 190, wherein at least a portion of each of the contacts protrudes from the binder. 192. The electronic device of claim 190, wherein at least a portion of each said sidewall protrudes from the binder. 193. The electronic device of claim 190, wherein the binder comprises at least one of silicone or epoxy. 194. The electronic device of claim 190, wherein the binder contains a wavelength-conversion material therein. 195. The electronic device of claim 194, wherein the wavelength material comprises at least one of a phosphor or quantum dots. 196. The electronic device of claim 190, wherein a top surface of the binder opposite the substrate has a texture for promoting light extraction from the top surface. 197. The electronic device of claim 190, wherein the semiconductor die comprises a light- emitting element. 198. The electronic device of claim 197, wherein the binder is transparent to a wavelength of light emitted by the semiconductor die. 199. The electronic device of claim 197, wherein the semiconductor die comprises a bare-die light-emitting diode. 200. The electronic device of claim 197, wherein the semiconductor die comprises a semiconductor material comprising at least one of GaAs, AlAs, InAs, GaP, AlP, InP, ZnO, CdSe, CdTe, ZnTe, GaN, A1N, InN, silicon, or an alloy or mixture thereof. 201. The electronic device of claim 197, wherein the binder contains a wavelength-conversion material for absorption of at least a portion of light emitted from the semiconductor die and emission of converted light having a different wavelength, converted light and unconverted light emitted by the semiconductor die combining to form substantially white light. 202. The electronic device of claim 201, wherein the substantially white light has a correlated color temperature in the range of 2000 K to 10,000 K. 203. The electronic device of claim 190, wherein the semiconductor die comprises a light- detecting element. 204. The electronic device of claim 203, wherein the binder is transparent to a wavelength of light detected by the semiconductor die. 205. The electronic device of claim 190, further comprising an optical element associated with the semiconductor die. 206. The electronic device of claim 190, further comprising a reflecting layer over or within at least a portion of the binder. 207. The electronic device of claim 190, wherein the binder comprises a plurality of discrete regions, at least one of which comprises the binder and at least one wavelength-conversion material. 208. The electronic device of claim 190, wherein the semiconductor die comprises one or more active semiconductor layers not disposed on a semiconductor substrate. 209. The electronic device of claim 190, wherein the contacts are electrically coupled to the conductive traces with a conductive adhesive. 210. The electronic device of claim 209, wherein the conductive adhesive comprises a substantially isotropic conductive adhesive electrically connecting a first contact only to the first trace and a second contact only to the second trace, and further comprising a non-conductive adhesive material disposed in the gap. 21 1. The electronic device of claim 209, wherein the conductive adhesive comprises an anisotropic conductive adhesive (ACA) electrically connecting a first contact only to the first trace and a second contact only to the second trace. 212. The electronic device of claim 21 1, wherein a portion of the ACA is disposed in the gap and substantially isolates the first contact from the second contact. 213. The electronic device of claim 190, wherein the contacts are electrically coupled to the conductive traces by at least one of wire bonds or solder. 214. The electronic device of claim 190, wherein the conductive traces comprise at least one of silver, gold, aluminum, chromium, copper, or carbon. 215. The electronic device of claim 190, wherein the substrate comprises at least one of polyethylene naphthalate, polyethylene terephthalate, polycarbonate, polyethersulfone, polyester, polyimide, polyethylene, or paper. 216. The electronic device of claim 190, wherein (i) the semiconductor die comprises a light- emitting element, and (ii) a reflectivity of the substrate for a wavelength emitted by at least one of the light-emitting element or the binder is greater than 80%. 217. The electronic device of claim 190, wherein (i) the semiconductor die comprises a light- emitting element, and (ii) a transmissivity of the substrate for a wavelength emitted by at least one of the light-emitting element or the binder is greater than 80%. 218. The electronic device of claim 190, further comprising circuitry for powering the semiconductor die electrically connected to the semiconductor die.