Claims
- 1. A method of forming nanoparticles comprising heating a mixture of a Group IV metal organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticles are formed.
- 2. The method of claim 1, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 3. The method of claim 1, wherein the organometallic precursor is an organosilane compound.
- 4. The method of claim 1, wherein the organometallic precursor is an organogermanium compound.
- 5. The method of claim 1, wherein the organometallic precursor is an alkylsilane.
- 6. The method of claim 1, wherein the organometallic precursor is an arylsilane.
- 7. The method of claim 1, wherein the organometallic precursor is tetraethylsilane or diphenylsilane.
- 8. The method of claim 1, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 9. The method of claim 1, wherein the capping agent is an alcohol.
- 10. The method of claim 1, wherein the capping agent is an amine.
- 11. The method of claim 1, wherein the capping agent is a thiol.
- 12. The method of claim 1, wherein the capping agent is an alkene.
- 13. The method of claim 1, wherein the capping agent is octanol.
- 14. The method of claim 1, wherein the mixture further comprises a solvent.
- 15. The method of claim 1, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 16. The method of claim 1, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 17. The method of claim 1, wherein the mixture further comprises a solvent, and wherein the solvent is an non-aromatic hydrocarbon.
- 18. The method of claim 1, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 19. The method of claim 1, wherein the mixture further comprises a solvent, and further comprising removing entrained oxygen from the solvent prior to heating the mixture.
- 20. The method of claim 1, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 21. The method of claim 1, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 22. The method of claim 1, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 23. The method of claim 1, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 24. The method of claim 1, further comprising removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 25. The method of claim 1, further comprising extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 26. The method of claim 1, further comprising:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 27. The method of claim 1, wherein the nanoparticles have an average particle diameter of less than about 100 angstroms.
- 28. The method of claim 1, wherein the nanoparticles have an average particle diameter distribution of between about 1 and 100 angstroms, and further comprising subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 29. A nanoparticle formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes forming the nanoparticles.
- 30. The nanoparticle of claim 29, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 31. The nanoparticle of claim 29, wherein the Group IV organometallic precursor is an organosilane compound.
- 32. The nanoparticle of claim 29, wherein the Group IV organometallic precursor is an organogermanium compound.
- 33. The nanoparticle of claim 29, wherein the Group IV organometallic precursor is an alkylsilane.
- 34. The nanoparticle of claim 29, wherein the Group IV organometallic precursor is an arylsilane.
- 35. The nanoparticle of claim 29, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 36. The nanoparticle of claim 29, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 37. The nanoparticle of claim 29, wherein the capping agent is an alcohol.
- 38. The nanoparticle of claim 29, wherein the capping agent is an amine.
- 39. The nanoparticle of claim 29, wherein the capping agent is a thiol.
- 40. The nanoparticle of claim 29, wherein the capping agent is an alkene.
- 41. The nanoparticle of claim 29, wherein the capping agent is octanol.
- 42. The nanoparticle of claim 29, wherein the mixture further comprises a solvent.
- 43. The nanoparticle of claim 29, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 44. The nanoparticle of claim 29, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 45. The nanoparticle of claim 29, wherein the mixture further comprises a solvent, and wherein the solvent is an non-aromatic hydrocarbon.
- 46. The nanoparticle of claim 29, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 47. The nanoparticle of claim 29, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 48. The nanoparticle of claim 29, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 49. The nanoparticle of claim 29, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 50. The nanoparticle of claim 29, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 51. The nanoparticle of claim 29, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 52. The nanoparticle of claim 29, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 53. The nanoparticle of claim 29, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 54. The nanoparticle of claim 29, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 55. The nanoparticle of claim 29, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 56. The nanoparticle of claim 29, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 57. A nanoparticle comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein the nanoparticle has an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticle.
- 58. The nanoparticle of claim 57, wherein the Group IV metal comprises silicon.
- 59. The nanoparticle of claim 57, wherein the Group IV metal comprises germanium.
- 60. The nanoparticle of claim 57, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 61. The nanoparticle of claim 57, wherein the capping agent is an alcohol.
- 62. The nanoparticle of claim 57, wherein the capping agent is an amine.
- 63. The nanoparticle of claim 57, wherein the capping agent is a thiol.
- 64. The nanoparticle of claim 57, wherein the capping agent is an alkene.
- 65. The nanoparticle of claim 57, wherein the capping agent is octanol.
- 66. The nanoparticle of claim 57, wherein the metal nanoparticle emits visible light in response to an applied current.
- 67. A method of forming nanoparticles comprising heating a mixture of one or more organometallic precursors and a capping agent in a supercritical fluid, wherein the organometallic precursors decompose forming the nanoparticles.
- 68. The method of claim 67, wherein the organometallic precursor is a Group II metal organometallic compound.
- 69. The method of claim 67, wherein the organometallic precursor is a Group III metal organometallic compound.
- 70. The method of claim 67, wherein the organometallic precursor is a Group IV metal organometallic compound.
- 71. The method of claim 67, wherein the organometallic precursor is a Group V metal organometallic compound.
- 72. The method of claim 67, wherein the organometallic precursor is a Group VI metal organometallic compound.
- 73. The method of claim 67, wherein the organometallic precursor is a metallocene.
- 74. The method of claim 67, wherein the mixture comprises a Group II metal organometallic compound and a Group VI metal organometallic compound.
- 75. The method of claim 67, wherein the mixture comprises a Group III metal organometallic compound and a Group V metal organometallic compound.
- 76. The method of claim 67, wherein the mixture comprises a Group IV metal organometallic compound and a Group V metal organometallic compound.
- 77. The method of claim 67, wherein the mixture comprises a Group IV metal organometallic compound and a Group III metal organometallic compound.
- 78. The method of claim 67, wherein the mixture comprises a Group IV metal organometallic compound and further comprising a rare earth element organometallic compound.
- 79. The method of claim 67, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 80. The method of claim 67, wherein the capping agent is an alcohol.
- 81. The method of claim 67, wherein the capping agent is an amine.
- 82. The method of claim 67, wherein the capping agent is a thiol.
- 83. The method of claim 67, wherein the capping agent is an alkene.
- 84. The method of claim 67, wherein the capping agent is octanol.
- 85. The method of claim 67, wherein the supercritical fluid comprises the capping agent in a supercritical state.
- 86. The method of claim 67, wherein the supercritical fluid comprises a hydrocarbon in a supercritical state.
- 87. The method of claim 67, wherein the supercritical fluid comprises an aromatic hydrocarbon in a supercritical state.
- 88. The method of claim 67, wherein the supercritical fluid comprises a non-aromatic hydrocarbon in a supercritical state.
- 89. The method of claim 67, wherein the supercritical fluid comprises hexane or cyclohexane in a supercritical state.
- 90. The method of claim 67, wherein the mixture further comprises a solvent, and further comprising removing entrained oxygen from the solvent prior to heating the mixture.
- 91. The method of claim 67, further comprising removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 92. The method of claim 67, further comprising extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 93. The method of claim 67, further comprising:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 94. The method of claim 67, wherein the nanoparticles have an average particle diameter of less than about 100 angstroms.
- 95. The method of claim 67, wherein the nanoparticles have an average particle diameter distribution of between about 1 and 100 angstroms, and further comprising subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 96. A nanoparticle formed by the method comprising heating a mixture of one or more organometallic precursors and a capping agent in a supercritical fluid, wherein the organometallic precursors decompose forming the nanoparticles.
- 97. The nanoparticle of claim 96, wherein the organometallic precursor is a Group II metal organometallic compound.
- 98. The nanoparticle of claim 96, wherein the organometallic precursor is a Group III metal organometallic compound.
- 99. The nanoparticle of claim 96, wherein the organometallic precursor is a Group IV metal organometallic compound.
- 100. The nanoparticle of claim 96, wherein the organometallic precursor is a Group V metal organometallic compound.
- 101. The nanoparticle of claim 96, wherein the organometallic precursor is a Group VI metal organometallic compound.
- 102. The nanoparticle of claim 96, wherein the organometallic precursor is a metallocene.
- 103. The nanoparticle of claim 96, wherein the mixture comprises a Group II metal organometallic compound and a Group VI metal organometallic compound.
- 104. The nanoparticle of claim 96, wherein the mixture comprises a Group III metal organometallic compound and a Group V metal organometallic compound.
- 105. The nanoparticle of claim 96, wherein the mixture comprises a Group IV metal organometallic compound and a Group V metal organometallic compound.
- 106. The nanoparticle of claim 96, wherein the mixture comprises a Group IV metal organometallic compound and a Group III metal organometallic compound.
- 107. The nanoparticle of claim 96, wherein the mixture comprises a Group IV metal organometallic compound and further comprising a rare earth element organometallic compound.
- 108. The nanoparticle of claim 96, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 109. The nanoparticle of claim 96, wherein the capping agent is an alcohol.
- 110. The nanoparticle of claim 96, wherein the capping agent is an amine.
- 111. The nanoparticle of claim 96, wherein the capping agent is a thiol.
- 112. The nanoparticle of claim 96, wherein the capping agent is an alkene.
- 113. The nanoparticle of claim 96, wherein the capping agent is octanol.
- 114. The nanoparticle of claim 96, wherein the mixture further comprises a solvent.
- 115. The nanoparticle of claim 96, wherein the supercritical fluid comprises the capping agent in a supercritical state.
- 116. The nanoparticle of claim 96, wherein the supercritical fluid comprises a hydrocarbon in a supercritical state.
- 117. The nanoparticle of claim 96, wherein the supercritical fluid comprises an aromatic hydrocarbon in a supercritical state.
- 118. The nanoparticle of claim 96, wherein the supercritical fluid comprises a non-aromatic hydrocarbon in a supercritical state.
- 119. The nanoparticle of claim 96, wherein the supercritical fluid comprises hexane or cyclohexane in a supercritical state.
- 120. The nanoparticle of claim 96, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 121. The nanoparticle of claim 96, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 122. The nanoparticle of claim 96, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 123. The nanoparticle of claim 96, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 124. The nanoparticle of claim 96, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 125. The nanoparticle of claim 96, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 126. A nanoparticle comprising a metal and a capping agent coupled to the metal, wherein the nanoparticle has an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticle.
- 127. The nanoparticle of claim 126, wherein the metal is a Group II metal.
- 128. The nanoparticle of claim 126, wherein the metal is a Group III metal.
- 129. The nanoparticle of claim 126, wherein the metal is a Group IV metal.
- 130. The nanoparticle of claim 126, wherein the metal is a Group V metal.
- 131. The nanoparticle of claim 126, wherein the metal is a Group VI metal.
- 132. The nanoparticle of claim 126, wherein the metal is a transition metal.
- 133. The nanoparticle of claim 126, wherein the metal is an alloy composed of a Group II metal and a Group VI metal.
- 134. The nanoparticle of claim 126, wherein the metal is an alloy composed of a Group III metal and a Group V metal.
- 135. The nanoparticle of claim 126, wherein the metal is an alloy composed of a Group IV metal and a Group V metal.
- 136. The nanoparticle of claim 126, wherein the metal is an alloy composed of a Group IV metal and a Group III metal.
- 137. The nanoparticle of claim 126, wherein the metal is an alloy composed of a Group IV metal and a rare earth element.
- 138. The nanoparticle of claim 126, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 139. The nanoparticle of claim 126, wherein the capping agent is an alcohol.
- 140. The nanoparticle of claim 126, wherein the capping agent is an amine.
- 141. The nanoparticle of claim 126, wherein the capping agent is a thiol.
- 142. The nanoparticle of claim 126, wherein the capping agent is an alkene.
- 143. The nanoparticle of claim 126, wherein the capping agent is octanol.
- 144. The nanoparticle of claim 126, wherein the metal nanoparticle emits visible light in response to an applied current.
- 145. A method of forming nanoparticles comprising heating a mixture of one or more metal salts and a capping agent in supercritical water, wherein the metal salts decompose forming the nanoparticles.
- 146. The method of claim 145, wherein the metal salt is a metal nitrate.
- 147. The method of claim 145, wherein the metal salt is a metal acetate.
- 148. The method of claim 145, wherein the metal salt is a transition metal salt.
- 149. The method of claim 145, wherein the metal salt is a copper metal salt.
- 150. The method of claim 145, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 151. The method of claim 145, wherein the capping agent is an alcohol.
- 152. The method of claim 145, wherein the capping agent is an amine.
- 153. The method of claim 145, wherein the capping agent is a thiol.
- 154. The method of claim 145, wherein the capping agent is an alkene.
- 155. The method of claim 145, wherein the capping agent is octanol.
- 156. The method of claim 145, further comprising removing the formed nanoparticles from the unreacted metal salt and capping agent after heating the mixture.
- 157. The method of claim 145, further comprising extracting the formed nanoparticles from the unreacted metal salt and capping agent with a solvent.
- 158. The method of claim 145, further comprising:
extracting the formed nanoparticles from the unreacted metal salt and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 159. The method of claim 145, wherein the nanoparticles have an average particle diameter of less than about 100 angstroms.
- 160. The method of claim 145, wherein the nanoparticles have an average particle diameter distribution of between about 1 and 100 angstroms, and further comprising subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 161. The method of claim 145, wherein the nanoparticles are metal nanoparticles.
- 162. The method of claim 145, wherein the nanoparticles are metal oxide nanoparticles.
- 163. A nanoparticle formed by the method comprising heating a mixture of one or more metal salts and a capping agent in supercritical water, wherein the metal salts decompose forming the nanoparticles.
- 164. The nanoparticle of claim 163, wherein the metal salt is a metal nitrate.
- 165. The nanoparticle of claim 163, wherein the metal salt is a metal acetate.
- 166. The nanoparticle of claim 163, wherein the metal salt is a transition metal salt.
- 167. The nanoparticle of claim 163, wherein the metal salt is a copper metal salt.
- 168. The nanoparticle of claim 163, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 169. The nanoparticle of claim 163, wherein the capping agent is an alcohol.
- 170. The nanoparticle of claim 163, wherein the capping agent is an amine.
- 171. The nanoparticle of claim 163, wherein the capping agent is a thiol.
- 172. The nanoparticle of claim 163, wherein the capping agent is an alkene.
- 173. The nanoparticle of claim 163, wherein the capping agent is octanol.
- 174. The nanoparticle of claim 163, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 175. The nanoparticle of claim 163, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 176. The nanoparticle of claim 163, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 177. The nanoparticle of claim 163, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 178. The nanoparticle of claim 163, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 179. A nanoparticle comprising a metal oxide and a capping agent coupled to the metal oxide, wherein the nanoparticle has an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticle.
- 180. The nanoparticle of claim 179, wherein the metal oxide is a transition metal oxide.
- 181. The nanoparticle of claim 179, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 182. The nanoparticle of claim 179, wherein the capping agent is an alcohol.
- 183. The nanoparticle of claim 179, wherein the capping agent is an amine.
- 184. The nanoparticle of claim 179, wherein the capping agent is a thiol.
- 185. The nanoparticle of claim 179, wherein the capping agent is an alkene.
- 186. The nanoparticle of claim 179, wherein the capping agent is octanol.
- 187. A method of forming nanoparticles in a continuous manner comprising:
injecting a mixture of an organometallic precursor and a capping agent into a reactor; heating the mixture within the reactor to a temperature wherein the precursor decomposes forming the nanoparticles; and removing the formed nanoparticles from the reactor while substantially simultaneously injecting additional organometallic precursors and capping agents into the reactor.
- 188. The method of claim 187, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 189. The method of claim 187, wherein the organometallic precursor is an organosilane compound.
- 190. The method of claim 187, wherein the organometallic precursor is an organogermanium compound.
- 191. The method of claim 187, wherein the organometallic precursor is an alkylsilane.
- 192. The method of claim 187, wherein the organometallic precursor is an arylsilane.
- 193. The method of claim 187, wherein the organometallic precursor is tetraethylsilane or diphenylsilane.
- 194. The method of claim 187, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 195. The method of claim 187, wherein the capping agent is an alcohol.
- 196. The method of claim 187, wherein the capping agent is an amine.
- 197. The method of claim 187, wherein the capping agent is a thiol.
- 198. The method of claim 187, wherein the capping agent is an alkene.
- 199. The method of claim 187, wherein the capping agent is octanol.
- 200. The method of claim 187, wherein the mixture further comprises a solvent.
- 201. The method of claim 187, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 202. The method of claim 187, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 203. The method of claim 187, wherein the mixture further comprises a solvent, and wherein the solvent is an non-aromatic hydrocarbon.
- 204. The method of claim 187, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 205. The method of claim 187, wherein the mixture further comprises a solvent, and further comprising removing entrained oxygen from the solvent prior to heating the mixture.
- 206. The method of claim 187, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 207. The method of claim 187, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 208. The method of claim 187, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 209. The method of claim 187, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 210. The method of claim 187, further comprising removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 211. The method of claim 187, further comprising extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 212. The method of claim 187, further comprising:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 213. The method of claim 187, wherein the nanoparticles have an average particle diameter of less than about 100 angstroms.
- 214. The method of claim 187, wherein the nanoparticles have an average particle diameter distribution of between about 1 and 100 angstroms, and further comprising subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 215. A nanoparticle formed by the method comprising heating a mixture of one or more organometallic precursors and a capping agent in a fluid at a temperature above about 300° C. and below the supercritical temperature of the fluid.
- 216. A nanoparticle formed by the method comprising heating a mixture of one or more organometallic precursors and a capping agent in a fluid at a temperature below the supercritical temperature of the fluid, wherein the temperature of the fluid is not less than about 100° C. below the supercritical temperature of the fluid.
- 217. A light emitting device, comprising:
a plurality of nanoparticles, the nanoparticles comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms; and an anode electrically coupled to the plurality of nanoparticles; and a cathode electrically coupled to the plurality of nanoparticles; wherein the anode and cathode together are configured to conduct an applied current to the nanoparticles, wherein the nanoparticles produce light in response to the applied current.
- 218. The device of claim 217, wherein second electrode comprises a transparent conductive oxide.
- 219. The device of claim 217, wherein the second electrode comprises a transparent conductive oxide and a supporting substrate, and wherein the transparent conductive oxide is formed on the supporting substrate.
- 220. The device of claim 217, wherein the second electrode comprises a transparent conductive oxide and a supporting substrate, and wherein the transparent conductive oxide is formed on the supporting substrate, and wherein the supporting substrate comprises glass.
- 221. The device of claim 217, further comprising a supporting host, wherein the nanoparticles are positioned in the supporting host.
- 222. The device of claim 217, further comprising a supporting host, wherein the nanoparticles are positioned in the supporting host, and wherein the supporting host is a polymer.
- 223. The device of claim 217, wherein at least some of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 224. The device of claim 217, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 225. The device of claim 217, wherein the Group IV metal comprises silicon.
- 226. The device of claim 217, wherein the Group IV metal comprises germanium.
- 227. The device of claim 217, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 228. The device of claim 217, wherein the capping agent is an alcohol.
- 229. The device of claim 217, wherein the capping agent is an amine.
- 230. The device of claim 217, wherein the capping agent is a thiol.
- 231. The device of claim 217, wherein the capping agent is an alkene.
- 232. The device of claim 217, wherein the capping agent is octanol.
- 233. A light emitting device, comprising:
a plurality of nanoparticles, formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticles are formed; an anode electrically coupled to a plurality of nanoparticles; and a cathode electrically coupled to a plurality of nanoparticles; wherein the anode and cathode together are configured to conduct an applied current to at least a plurality of the nanoparticles, wherein at least a plurality of the nanoparticles produce light in response to the applied current.
- 234. The device of claim 233, wherein second electrode comprises a transparent conductive oxide.
- 235. The device of claim 233, wherein the second electrode comprises a transparent conductive oxide and a supporting substrate, and wherein the transparent conductive oxide is formed on the supporting substrate.
- 236. The device of claim 233, wherein the second electrode comprises a transparent conductive oxide and a supporting substrate, and wherein the transparent conductive oxide is formed on the supporting substrate, and wherein the supporting substrate comprises glass.
- 237. The device of claim 233, further comprising a supporting host, wherein the nanoparticles are positioned in the supporting host.
- 238. The device of claim 233, further comprising a supporting host, wherein the nanoparticles are positioned in the supporting host, and wherein the supporting host is a polymer.
- 239. The device of claim 233, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 240. The device of claim 233, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 241. The device of claim 233, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 242. The device of claim 233, wherein the Group IV organometallic precursor is an organosilane compound.
- 243. The device of claim 233, wherein the Group IV organometallic precursor is an organogermanium compound.
- 244. The device of claim 233, wherein the Group IV organometallic precursor is an alkylsilane.
- 245. The device of claim 233, wherein the Group IV organometallic precursor is an arylsilane.
- 246. The device of claim 233, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 247. The device of claim 233, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 248. The device of claim 233, wherein the capping agent is an alcohol.
- 249. The device of claim 233, wherein the capping agent is an amine.
- 250. The device of claim 233, wherein the capping agent is a thiol.
- 251. The device of claim 233, wherein the capping agent is an alkene.
- 252. The device of claim 233, wherein the capping agent is octanol.
- 253. The device of claim 233, wherein the mixture further comprises a solvent.
- 254. The device of claim 233, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 255. The device of claim 233, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 256. The device of claim 233, wherein the mixture further comprises a solvent, and wherein the solvent is a non-aromatic hydrocarbon.
- 257. The device of claim 233, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 258. The device of claim 233, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 259. The device of claim 233, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 260. The device of claim 233, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 261. The device of claim 233, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 262. The device of claim 233, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 263. The device of claim 233, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 264. The device of claim 233, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 265. The device of claim 233, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 266. The device of claim 233, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 267. The device of claim 233, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 268. A light emitting device, comprising:
a plurality of nanoparticles, the nanoparticles comprising a metal and a capping agent coupled to the metal, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticles; and an anode electrically coupled to the plurality of nanoparticles; and a cathode electrically coupled to the plurality of nanoparticles; wherein the anode and cathode together are configured to conduct an applied current to the nanoparticles, wherein the nanoparticles produce light in response to the applied current.
- 269. A display apparatus, comprising:
a support; an plurality of light emitting devices positioned on the support, wherein at least one of the light emitting devices comprise:
a plurality of nanoparticles, comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms; a conductive material electrically coupled to a plurality of nanoparticles, wherein the conductive material is configured to conduct an applied current to the nanoparticles; a controller configured to control the application of current to at least one of the light emitting devices.
- 270. The apparatus of claim 269, wherein the controller is configured to control the intensity of the light emitting devices.
- 271. The apparatus of claim 269, wherein the controller is configured to control the color of the light emitting devices.
- 272. The apparatus of claim 269, further comprising a transparent cover positioned adjacent the array of light emitting devices.
- 273. The apparatus of claim 269, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 274. The apparatus of claim 269, wherein the Group IV metal comprises silicon.
- 275. The apparatus of claim 269, wherein the Group IV metal comprises germanium.
- 276. The apparatus of claim 269, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 277. The apparatus of claim 269, wherein the capping agent is an alcohol.
- 278. The apparatus of claim 269, wherein the capping agent is an amine.
- 279. The apparatus of claim 269, wherein the capping agent is a thiol.
- 280. The apparatus of claim 269, wherein the capping agent is an alkene.
- 281. The apparatus of claim 269, wherein the capping agent is octanol.
- 282. A display apparatus, comprising:
a support; an plurality of light emitting devices positioned on the support, wherein the light emitting devices comprise:
a plurality of nanoparticles, the nanoparticles formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticles are formed; a conductive material electrically coupled to a plurality of nanoparticles, wherein the conductive material is configured to conduct an applied current to the nanoparticles; a controller configured to control the application of current to at least one of the light emitting devices.
- 283. The apparatus of claim 282, wherein the controller is configured to control the intensity of the light emitting devices.
- 284. The apparatus of claim 282, wherein the controller is configured to control the color of the light emitting devices.
- 285. The apparatus of claim 282, further comprising a transparent cover positioned adjacent the array of light emitting devices.
- 286. The apparatus of claim 282, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 287. The apparatus of claim 282, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 288. The apparatus of claim 282, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 289. The apparatus of claim 282, wherein the Group IV organometallic precursor is an organosilane compound.
- 290. The apparatus of claim 282, wherein the Group IV organometallic precursor is an organogermanium compound.
- 291. The apparatus of claim 282, wherein the Group IV organometallic precursor is an alkylsilane.
- 292. The apparatus of claim 282, wherein the Group IV organometallic precursor is an arylsilane.
- 293. The apparatus of claim 282, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 294. The apparatus of claim 282, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 295. The apparatus of claim 282, wherein the capping agent is an alcohol.
- 296. The apparatus of claim 282, wherein the capping agent is an amine.
- 297. The apparatus of claim 282, wherein the capping agent is a thiol.
- 298. The apparatus of claim 282, wherein the capping agent is an alkene.
- 299. The apparatus of claim 282, wherein the capping agent is octanol.
- 300. The apparatus of claim 282, wherein the mixture further comprises a solvent.
- 301. The apparatus of claim 282, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 302. The apparatus of claim 282, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 303. The apparatus of claim 282, wherein the mixture further comprises a solvent, and wherein the solvent is a non-aromatic hydrocarbon.
- 304. The apparatus of claim 282, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 305. The apparatus of claim 282, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 306. The apparatus of claim 282, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 307. The apparatus of claim 282, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 308. The apparatus of claim 282, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 309. The apparatus of claim 282, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 310. The apparatus of claim 282, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 311. The apparatus of claim 282, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 312. The apparatus of claim 282, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 313. The apparatus of claim 282, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 314. The apparatus of claim 282, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 315. A display apparatus, comprising:
a support; an plurality of light emitting devices positioned on the support, wherein the light emitting devices comprise:
a plurality of nanoparticles, comprising a metal and a capping agent coupled to the metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticles; a conductive material electrically coupled to a plurality of nanoparticles, wherein the conductive material is configured to conduct an applied current to the nanoparticles; a controller configured to control the application of current to each of the light emitting devices
- 316. A system for detecting an analyte in a fluid comprising:
a nanoparticle, comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms; and a receptor configured to interact with the analyte, wherein the receptor is coupled to at least one of the nanoparticles.
- 317. The system of claim 316, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 318. The system of claim 316, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor.
- 319. The system of claim 316, wherein the Group IV metal comprises silicon.
- 320. The system of claim 316, wherein the Group IV metal comprises germanium.
- 321. The system of claim 316, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 322. The system of claim 316, wherein the capping agent is an alcohol.
- 323. The system of claim 316, wherein the capping agent is an amine.
- 324. The system of claim 316, wherein the capping agent is a thiol.
- 325. The system of claim 316, wherein the capping agent is an alkene.
- 326. The system of claim 316, wherein the capping agent is octanol
- 327. The system of claim 316, wherein the receptor comprises a polynucleotide.
- 328. The system of claim 316, wherein the receptor comprises a peptide.
- 329. The system of claim 316, wherein the receptor comprises an enzyme.
- 330. The system of claim 316, wherein the receptor comprises a synthetic receptor.
- 331. The system of claim 316, wherein the receptor comprises an unnatural biopolymer.
- 332. The system of claim 316, wherein the receptor comprises an antibody.
- 333. The system of claim 316, wherein the receptor comprises an antigen.
- 334. The system of claim 316, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker comprises a peptide.
- 335. The system of claim 316, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker comprises a peptide mimetic.
- 336. The system of claim 316, wherein the analyte comprises a metal ion.
- 337. The system of claim 316, wherein the analyte comprises a phosphate functional groups.
- 338. The system of claim 316, wherein the analyte comprises a bacterium.
- 339. The system of claim 316, wherein the analyte comprises a protease.
- 340. The system of claim 316, wherein the analyte comprises a nuclease.
- 341. A system for detecting an analyte in a fluid comprising:
a nanoparticle, formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticle is formed; and a receptor configured to interact with the analyte, wherein the receptor is coupled to the nanoparticle.
- 342. The system of claim 341, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 343. The system of claim 341, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor.
- 344. The system of claim 341, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 345. The system of claim 341, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 346. The system of claim 341, wherein the Group IV organometallic precursor is an organosilane compound.
- 347. The system of claim 341, wherein the Group IV organometallic precursor is an organogermanium compound.
- 348. The system of claim 341, wherein the Group IV organometallic precursor is an alkylsilane.
- 349. The system of claim 341, wherein the Group IV organometallic precursor is an arylsilane.
- 350. The system of claim 341, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 351. The system of claim 341, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 352. The system of claim 341, wherein the capping agent is an alcohol.
- 353. The system of claim 341, wherein the capping agent is an amine.
- 354. The system of claim 341, wherein the capping agent is a thiol.
- 355. The system of claim 341, wherein the capping agent is an alkene.
- 356. The system of claim 341, wherein the capping agent is octanol.
- 357. The system of claim 341, wherein the mixture further comprises a solvent.
- 358. The system of claim 341, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 359. The system of claim 341, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 360. The system of claim 341, wherein the mixture further comprises a solvent, and wherein the solvent is an non-aromatic hydrocarbon.
- 361. The system of claim 341, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 362. The system of claim 341, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 363. The system of claim 341, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 364. The system of claim 341, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 365. The system of claim 341, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 366. The system of claim 341, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 367. The system of claim 341, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 368. The system of claim 341, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 369. The system of claim 341, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 370. The system of claim 341, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 371. The system of claim 341, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 372. The system of claim 341, wherein the receptor comprises a polynucleotide.
- 373. The system of claim 341, wherein the receptor comprises a peptide.
- 374. The system of claim 341, wherein the receptor comprises an enzyme.
- 375. The system of claim 341, wherein the receptor comprises a synthetic receptor.
- 376. The system of claim 341, wherein the receptor comprises an unnatural biopolymer.
- 377. The system of claim 341, wherein the receptor comprises an antibody.
- 378. The system of claim 341, wherein the receptor comprises an antigen.
- 379. The system of claim 341, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker compress a peptide.
- 380. The system of claim 341, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker comprises a peptide mimetic.
- 381. The system of claim 341, wherein the analyte comprises a metal ion.
- 382. The system of claim 341, wherein the analyte comprises a phosphate functional groups.
- 383. The system of claim 341, wherein the analyte comprises a bacterium.
- 384. The system of claim 341, wherein the analyte comprises a protease.
- 385. The system of claim 341, wherein the analyte comprises a nuclease.
- 386. A system for detecting an analyte in a fluid comprising:
a nanoparticle, comprising a metal and a capping agent coupled to the metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticles; and a receptor configured to interact with the analyte, wherein the receptor is coupled to at least one of the nanoparticles.
- 387. A memory device, comprising:
a source configured to apply an electrical charge; a drain configured to hold an electric charge; a channel configured to separate the source and the drain; a floating gate positioned above the channel, the floating gate comprising a plurality of nanoparticles, wherein at least a plurality of the nanoparticles comprises a Group IV metal and a capping agent coupled to the Group IV metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms; a control gate positioned substantially adjacent the floating gate; and a conductor comprising an oxide positioned between the control gate and the floating gate; wherein the floating gate is positioned between the channel and the control gate.
- 388. The device of claim 387, wherein the floating gate is electrically isolated.
- 389. The device of claim 387, wherein the nanoparticle further comprises a doping agent.
- 390. The device of claim 387, further comprising a supporting host, wherein the nanoparticle is positioned in the supporting host.
- 391. The device of claim 387, further comprising a supporting host, wherein the nanoparticle is positioned in the supporting host, and wherein the supporting host is a polymer.
- 392. The device of claim 387, wherein the Group IV metal comprises silicon.
- 393. The device of claim 387, wherein the Group IV metal comprises germanium.
- 394. The device of claim 387, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the nanoparticle; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 395. The device of claim 387, wherein the capping agent is an alcohol.
- 396. The device of claim 387, wherein the capping agent is an amine.
- 397. The device of claim 387, wherein the capping agent is a thiol.
- 398. The device of claim 387, wherein the capping agent is an alkene.
- 399. The device of claim 387, wherein the capping agent is octanol.
- 400. The device of claim 387, wherein the metal nanoparticle emits visible light in response to an applied current.
- 401. A memory device, comprising:
a source configured to apply an electrical charge; a drain configured to hold an electric charge; a channel configured to separate the source and the drain; a floating gate positioned above the channel, the floating gate comprising a plurality of nanoparticles, formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticles are formed; a control gate positioned substantially adjacent the floating gate; and a conductor comprising an oxide positioned between the control gate and the floating gate; wherein the floating gate is positioned between the channel and the control gate.
- 402. The device of claim 401, wherein the floating gate is electrically isolated.
- 403. The device of claim 401, wherein the Group IV metal element is silicon
- 404. The device of claim 401, wherein the nanoparticle further comprises a doping agent.
- 405. The device of claim 401, further comprising a supporting host, wherein the nanoparticle is positioned in the supporting host.
- 406. The device of claim 401, further comprising a supporting host, wherein the nanoparticle is positioned in the supporting host, and wherein the supporting host is a polymer.
- 407. The device of claim 401, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 408. The device of claim 401, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 409. The device of claim 401, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 410. The device of claim 401, wherein the Group IV organometallic precursor is an organosilane compound.
- 411. The device of claim 401, wherein the Group IV organometallic precursor is an organogermanium compound.
- 412. The device of claim 401, wherein the Group IV organometallic precursor is an alkylsilane.
- 413. The device of claim 401, wherein the Group IV organometallic precursor is an arylsilane.
- 414. The device of claim 401, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 415. The device of claim 401, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 416. The device of claim 401, wherein the capping agent is an alcohol.
- 417. The device of claim 401, wherein the capping agent is an amine.
- 418. The device of claim 401, wherein the capping agent is a thiol.
- 419. The device of claim 401, wherein the capping agent is an alkene.
- 420. The device of claim 401, wherein the capping agent is octanol.
- 421. The device of claim 401, wherein the mixture further comprises a solvent.
- 422. The device of claim 401, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 423. The device of claim 401, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 424. The device of claim 401, wherein the mixture further comprises a solvent, and wherein the solvent is a non-aromatic hydrocarbon.
- 425. The device of claim 401, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 426. The device of claim 401, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 427. The device of claim 401, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 428. The device of claim 401, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 429. The device of claim 401, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 430. The device of claim 401, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 431. The device of claim 401, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 432. The device of claim 401, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 433. The device of claim 401, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 434. The device of claim 401, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 435. The device of claim 401, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 436. A memory device, comprising:
a source configured to apply an electrical charge; a drain configured to hold an electric charge; a channel configured to separate the source and the drain; a floating gate positioned above the channel, the floating gate comprising a plurality of nanoparticles, the nanoparticles comprising a metal and a capping agent coupled to the metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticles; a control gate positioned substantially adjacent the floating gate; and a conductor comprising an oxide positioned between the control gate and the floating gate; wherein the floating gate is positioned between the channel and the control gate.
- 437. A floating gate device, comprising a plurality of nanoparticles, the nanoparticles comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 438. A coherent light emitting device, comprising:
a plurality of nanoparticles, comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms; an excitation source configured to apply energy to the nanoparticles in an absorbable form; an optical cavity configured to direct light; and wherein when the excitation source applies energy to nanoparticles the nanoparticles produce light, and wherein light produced by the nanoparticles is directed by the optical cavity.
- 439. The device of claim 438, wherein the optical cavity comprises a first reflective device and a second reflective device.
- 440. The device of claim 438, wherein the optical cavity comprises a first reflective device and a second reflective device, and wherein the first reflective device is configured to reflect light within the optical cavity, and wherein the second reflective device is configured to allow a portion of the light within the optical cavity to leave the optical cavity.
- 441. The device of claim 438, wherein the Group IV metal comprises silicon.
- 442. The device of claim 438, wherein the Group IV metal comprises germanium.
- 443. The device of claim 438, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the nanoparticle; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 444. The device of claim 438, wherein the capping agent is an alcohol.
- 445. The device of claim 438, wherein the capping agent is an amine.
- 446. The device of claim 438, wherein the capping agent is a thiol.
- 447. The device of claim 438, wherein the capping agent is an alkene.
- 448. The device of claim 438, wherein the capping agent is octanol.
- 449. The device of claim 438, wherein the metal nanoparticle emits visible light in response to an applied current.
- 450. A coherent light emitting device, comprising:
a plurality of nanoparticles, formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticles are formed; an excitation source configured to apply energy to at least one of the nanoparticles in an absorbable form; and an optical cavity configured to direct light; wherein when the excitation source applies energy to one or more nanoparticles the one or more nanoparticles produce light, and wherein light produced by the one or more nanoparticles is directed by the optical cavity.
- 451. The device of claim 450, wherein the optical cavity comprises a first reflective device and a second reflective device.
- 452. The device of claim 450, wherein the optical cavity comprises a first reflective device and a second reflective device, and wherein the first reflective device is configured to reflect light within the optical cavity, and wherein the second reflective device is configured to allow a portion of the light within the optical cavity to leave the optical cavity.
- 453. The device of claim 450, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 454. The device of claim 450, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 455. The device of claim 450, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 456. The device of claim 450, wherein the Group IV organometallic precursor is an organosilane compound.
- 457. The device of claim 450, wherein the Group IV organometallic precursor is an organogermanium compound.
- 458. The device of claim 450, wherein the Group IV organometallic precursor is an alkylsilane.
- 459. The device of claim 450, wherein the Group IV organometallic precursor is an arylsilane.
- 460. The device of claim 450, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 461. The device of claim 450, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 462. The device of claim 450, wherein the capping agent is an alcohol.
- 463. The device of claim 450, wherein the capping agent is an amine.
- 464. The device of claim 450, wherein the capping agent is a thiol.
- 465. The device of claim 450, wherein the capping agent is an alkene.
- 466. The device of claim 450, wherein the capping agent is octanol.
- 467. The device of claim 450, wherein the mixture further comprises a solvent.
- 468. The device of claim 450, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 469. The device of claim 450, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 470. The device of claim 450, wherein the mixture further comprises a solvent, and wherein the solvent is a non-aromatic hydrocarbon.
- 471. The device of claim 450, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 472. The device of claim 450, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 473. The device of claim 450, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 474. The device of claim 450, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 475. The device of claim 450, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 476. The device of claim 450, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 477. The device of claim 450, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 478. The device of claim 450, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 479. The device of claim 450, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 480. The device of claim 450, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 481. The device of claim 450, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 482. A coherent light emitting device, comprising:
a plurality of nanoparticles, comprising a metal and a capping agent coupled to the metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticles; an excitation source configured to apply energy to at least one of the nanoparticles in an absorbable form; and an optical cavity configured to direct light; wherein when the excitation source applies energy to one or more nanoparticles the one or more nanoparticles produce light, and wherein light produced by the one or more nanoparticles is directed by the optical cavity.
- 483. A system for at least partially containing an electrical charge temporarily, comprising:
a cathode comprising a plurality of nanoparticles, comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the nanoparticles are electroactive; an anode comprising an electroactive material; and a separator positioned between the cathode and the anode configured to inhibit contact between a portion of the cathode and a portion of the anode.
- 484. The system of claim 483, further comprising a first collector and a second collector.
- 485. The system of claim 483, further comprising a first collector and a second collector, wherein the first collector is positioned adjacent the cathode and configured to facilitate flow of electricity from the device, and wherein the second collector is positioned adjacent the anode and configured to facilitate flow of electricity from the device.
- 486. The system of claim 483, wherein the Group IV metal comprises silicon.
- 487. The system of claim 483, wherein the Group IV metal comprises germanium.
- 488. The system of claim 483, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the nanoparticle; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 489. The system of claim 483, wherein the capping agent is an alcohol.
- 490. The system of claim 483, wherein the capping agent is an amine.
- 491. The system of claim 483, wherein the capping agent is a thiol.
- 492. The system of claim 483, wherein the capping agent is an alkene.
- 493. The system of claim 483, wherein the capping agent is octanol.
- 494. The system of claim 483, wherein the metal nanoparticle emits visible light in response to an applied current.
- 495. A system for at least partially containing an electrical charge temporarily, comprising:
a cathode comprising a plurality of nanoparticles, formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticles are formed, wherein the nanoparticles are electroactive; an anode comprising an electroactive material; and a separator positioned between the cathode and the anode configured to inhibit contact between a portion of the cathode and a portion of the anode.
- 496. The system of claim 495, further comprising a first collector and a second collector.
- 497. The system of claim 495, further comprising a first collector and a second collector, wherein the first collector is positioned adjacent the cathode and configured to facilitate flow of electricity from the device, and wherein the second collector is positioned adjacent the anode and configured to facilitate flow of electricity from the device.
- 498. The system of claim 495, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 499. The system of claim 495, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 500. The system of claim 495, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 501. The system of claim 495, wherein the Group IV organometallic precursor is an organosilane compound.
- 502. The system of claim 495, wherein the Group IV organometallic precursor is an organogermanium compound.
- 503. The system of claim 495, wherein the Group IV organometallic precursor is an alkylsilane.
- 504. The system of claim 495, wherein the Group IV organometallic precursor is an arylsilane.
- 505. The system of claim 495, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 506. The system of claim 495, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 507. The system of claim 495, wherein the capping agent is an alcohol.
- 508. The system of claim 495, wherein the capping agent is an amine.
- 509. The system of claim 495, wherein the capping agent is a thiol.
- 510. The system of claim 495, wherein the capping agent is an alkene.
- 511. The system of claim 495, wherein the capping agent is octanol.
- 512. The system of claim 495, wherein the mixture further comprises a solvent.
- 513. The system of claim 495, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 514. The system of claim 495, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 515. The system of claim 495, wherein the mixture further comprises a solvent, and wherein the solvent is a non-aromatic hydrocarbon.
- 516. The system of claim 495, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 517. The system of claim 495, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 518. The system of claim 495, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 519. The system of claim 495, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 520. The system of claim 495, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 521. The system of claim 495, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 522. The system of claim 495, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 523. The system of claim 495, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 524. The system of claim 495, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 525. The system of claim 495, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 526. The system of claim 495, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 527. A system for at least partially containing an electrical charge temporarily, comprising:
a cathode comprising a plurality of nanoparticles, comprising a metal and a capping agent coupled to the metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticles, and wherein the nanoparticles are electroactive; an anode comprising an electroactive material; and a separator positioned between the cathode and the anode configured to inhibit contact between a portion of the cathode and a portion of the anode.
- 528. A system for electrically communicating with a biological entity comprising:
a nanoparticle, comprising a Group IV metal and a capping agent coupled to the Group IV metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein at least one of the nanoparticles produces an electric field in response to a stimulus; and a receptor configured to interact with the biological entity, wherein the receptor is coupled to the nanoparticle.
- 529. The system of claim 528, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor.
- 530. The system of claim 528, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 531. The system of claim 528, wherein the Group IV metal comprises silicon.
- 532. The system of claim 528, wherein the Group IV metal comprises germanium.
- 533. The system of claim 528, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 534. The system of claim 528, wherein the capping agent is an alcohol.
- 535. The system of claim 528, wherein the capping agent is an amine.
- 536. The system of claim 528, wherein the capping agent is a thiol.
- 537. The system of claim 528, wherein the capping agent is an alkene.
- 538. The system of claim 528, wherein the capping agent is octanol
- 539. The system of claim 528, wherein the receptor comprises a polynucleotide.
- 540. The system of claim 528, wherein the receptor comprises a peptide.
- 541. The system of claim 528, wherein the receptor comprises an enzyme.
- 542. The system o f claim 528, wherein the receptor comprises a synthetic receptor.
- 543. The system of claim 528, wherein the receptor comprises an unnatural biopolymer.
- 544. The system of claim 528, wherein the receptor comprises an antibody.
- 545. The system of claim 528, wherein the receptor comprises an antigen.
- 546. The system of claim 528, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker comprises a peptide.
- 547. The system of claim 528, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker comprises a peptide mimetic.
- 548. The system of claim 528, wherein the analyte comprises a metal ion.
- 549. The system of claim 528, wherein the analyte comprises a phosphate functional groups.
- 550. The system of claim 528, wherein the analyte comprises a bacterium.
- 551. The system of claim 528, wherein the analyte comprises a protease.
- 552. The system of claim 528, wherein the analyte comprises a nuclease.
- 553. A system for electrically communicating with a biological entity comprising:
a nanoparticle, formed by the method comprising heating a mixture of a Group IV organometallic precursor and a capping agent at a temperature wherein the precursor decomposes, and the nanoparticle is formed, and wherein at least one of the nanoparticles produces an electric field in response to a stimulus; and a receptor configured to interact with the biological entity, wherein the receptor is coupled to at least one of the nanoparticles.
- 554. The system of claim 553, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor.
- 555. The system of claim 553, wherein the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms.
- 556. The system of claim 553, wherein the capping agent inhibits oxidation of the nanoparticles during use.
- 557. The system of claim 553, wherein heating the mixture comprises heating the mixture at a pressure greater than 1 atmosphere.
- 558. The system of claim 553, wherein the Group IV organometallic precursor is an organosilane compound.
- 559. The system of claim 553, wherein the Group IV organometallic precursor is an organogermanium compound.
- 560. The system of claim 553, wherein the Group IV organometallic precursor is an alkylsilane.
- 561. The system of claim 553, wherein the Group IV organometallic precursor is an arylsilane.
- 562. The system of claim 553, wherein the Group IV organometallic precursor is tetraethylsilane or diphenylsilane.
- 563. The system of claim 553, wherein the capping agent is represented by the general formula:
(R)n—X
wherein X is an atom or functional group capable of binding to the surface of the composition; and wherein R is hydrogen, an aryl group having between 1 and 10 carbon atoms, or an alkyl group having between 1 and 10 carbon atoms; n is an integer of at least 1.
- 564. The system of claim 553, wherein the capping agent is an alcohol.
- 565. The system of claim 553, wherein the capping agent is an amine.
- 566. The system of claim 553, wherein the capping agent is a thiol.
- 567. The system of claim 553, wherein the capping agent is an alkene.
- 568. The system of claim 553, wherein the capping agent is octanol.
- 569. The system of claim 553, wherein the mixture further comprises a solvent.
- 570. The system of claim 553, wherein the mixture further comprises a solvent, and wherein the solvent is a hydrocarbon.
- 571. The system of claim 553, wherein the mixture further comprises a solvent, and wherein the solvent is an aromatic hydrocarbon.
- 572. The system of claim 553, wherein the mixture further comprises a solvent, and wherein the solvent is an non-aromatic hydrocarbon.
- 573. The system of claim 553, wherein the mixture further comprises a solvent, and wherein the solvent is cyclohexane or hexane.
- 574. The system of claim 553, wherein the mixture further comprises a solvent, and wherein the method further comprises removing entrained oxygen from the solvent prior to heating the mixture.
- 575. The system of claim 553, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature equal to or greater than the supercritical temperature of the capping agent.
- 576. The system of claim 553, wherein heating the mixture comprises heating the organometallic precursor and the capping agent at a temperature and pressure such that the capping agent is in a supercritical state.
- 577. The system of claim 553, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature equal to or greater than the supercritical temperature of the solvent.
- 578. The system of claim 553, wherein the mixture further comprises a solvent, and wherein heating the mixture comprises heating the organometallic precursor, the capping agent, and the solvent at a temperature and pressure such that the solvent is in a supercritical state.
- 579. The system of claim 553, wherein the method further comprised removing the formed nanoparticles from the unreacted organometallic precursor and capping agent after heating the mixture.
- 580. The system of claim 553, wherein the method further comprises extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a solvent.
- 581. The system of claim 553, wherein the method further comprises:
extracting the formed nanoparticles from the unreacted organometallic precursor and capping agent with a first solvent; adding a second solvent to the first solvent to induce aggregation of the nanoparticles.
- 582. The system of claim 553, wherein the nanoparticle has an average particle diameter of less than about 100 angstroms.
- 583. The system of claim 553, wherein the nanoparticle has an average particle diameter distribution of between about 1 and 100 angstroms, and wherein the method further comprises subjecting the nanoparticles to a chromatographic process such that particles of different sizes are separated from each other.
- 584. The system of claim 553, wherein the receptor comprises a polynucleotide.
- 585. The system of claim 553, wherein the receptor comprises a peptide.
- 586. The system of claim 553, wherein the receptor comprises an enzyme.
- 587. The system of claim 553, wherein the receptor comprises a synthetic receptor.
- 588. The system of claim 553, wherein the receptor comprises an unnatural biopolymer.
- 589. The system of claim 553, wherein the receptor comprises an antibody.
- 590. The system of claim 553, wherein the receptor comprises an antigen.
- 591. The system of claim 553, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker comprises a peptide.
- 592. The system of claim 553, further comprising a linker, wherein a first end of the linker is coupled to the nanoparticle, and wherein a second end of the linker is coupled to the receptor, and wherein the linker comprises a peptide mimetic.
- 593. The system of claim 553, wherein the analyte comprises a metal ion.
- 594. The system of claim 553, wherein the analyte comprises a phosphate functional groups.
- 595. The system of claim 553, wherein the analyte comprises a bacterium.
- 596. The system of claim 553, wherein the analyte comprises a protease.
- 597. The system of claim 553, wherein the analyte comprises a nuclease.
- 598. A system for electrically communicating with a biological entity comprising:
a nanoparticle, comprising a metal and a capping agent coupled to the metal, wherein at least one of the nanoparticles have an average particle diameter of between about 1 to about 100 angstroms, and wherein the capping agent inhibits oxidation of the nanoparticles, and wherein at least one of the nanoparticles produces an electric field in response to a stimulus; and a receptor configured to interact with the biological entity, wherein the receptor is coupled to the nanoparticle.
PRIORITY CLAIM
[0001] This application claims priority to Provisional Patent Application No. 60/302,594 entitled “Light-Emitting Nanocrystals” filed on Jul. 2, 2001.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH
[0002] The United States Government has rights in this invention pursuant to National Science Foundation Contract No. 26-1122-20XX.
Provisional Applications (1)
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Number |
Date |
Country |
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60302594 |
Jul 2001 |
US |