Claims
- 1. A method, comprising:
providing a first material on at least a first portion of a first surface of a first tip of a first elongated carbon nanostructure; providing a second material on at least a second portion of a second surface of a second tip of a second elongated carbon nanostructure, the second elongated carbon nanostructure coupled to, and substantially parallel to, the first elongated carbon nanostructure; and penetrating a boundary of a biological sample with at least one member selected from the group consisting of the first tip and the second tip.
- 2. The method of claim 1, further comprising introducing the first material to the biological sample; and introducing the second material to the biological sample.
- 3. The method of claim 1, wherein the biological sample includes at least one cell, penetrating includes breaching a membrane barrier of the at least one cell with the first tip and, further comprising introducing the first material to an intracellular domain of the at least one cell.
- 4. The method of claim 1, wherein the first material has a substantially identical composition as the second material.
- 5. The method of claim 1, wherein the first material has a substantially different composition than the second material.
- 6. The method of claim 1, wherein penetrating includes centrifuging.
- 7. The method of claim 1, further comprising integrating the first material and the second material into the biological sample.
- 8. The method of claim 1, wherein the first elongated carbon nanostructure and the second elongated carbon nanostructure are coupled to a porous substrate.
- 9. A method, comprising:
providing a material on at least a portion of a surface of a tip of an elongated carbon nanostructure; penetrating a boundary of a biological sample with the tip; and pressing the cell against a wetted substantially flat surface.
- 10. The method of claim 9, wherein the elongated carbon nanostructure is coupled to a porous substrate.
- 11. The method of claim 9, further comprising draining fluid through the porous substrate.
- 12. The method of claim 9, wherein the biological sample includes at least one cell that is viable.
- 13. The method of claim 12, further comprising culturing the at least one cell.
- 14. The method of claim 13, wherein culturing includes incubation.
- 15. The method of claim 9, further comprising retaining at least a portion of the first elongated carbon nanostructure within the biological sample.
- 16. The method of claim 15, further comprising assimilating at least the portion of the first elongated carbon nanostructure within the biological sample.
- 17. The method of claim 9, further comprising coupling a circuit to the first elongated carbon nanostructure.
- 18. An apparatus, comprising:
at least one elongated carbon nanostructure including a tip, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 19. The apparatus of claim 18, further comprising a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 20. The apparatus of claim 19, wherein the metalization includes at least one element selected from the group consisting of gold and tungsten.
- 21. The apparatus of claim 18, further comprising a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 22. The apparatus of claim 21, further comprising a hydrogel layer on the silicon containing oxide layer.
- 23. The apparatus of claim 18, further comprising a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 24. The apparatus of claim 18, further comprising DNA complexed to at least a portion of the tip of the carbon nanostructure.
- 25. The apparatus of claim 18, further comprising a porous substrate coupled to the at least one elongated carbon nanostructure.
- 26. The apparatus of claim 25, further comprising a buffer layer of metalization coupled between the porous substrate and the at least one elongated carbon nanostructure.
- 27. The apparatus of claim 18, further comprising carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 28. The apparatus of claim 27 wherein DNA is covalently bound to at least a portion of the surface of the tip.
- 29. The apparatus of claim 18, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon.
- 30. The apparatus of claim 29, wherein the nitrogenated carbon bears an overall positive charge in physiological buffers and electrostatically retains DNA.
- 31. An apparatus, comprising:
at least one elongated carbon nanostructure including a tip; and a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 32. The apparatus of claim 31, wherein the metalization includes at least one element selected from the group consisting of gold and tungsten.
- 33. The apparatus of claim 31, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 34. The apparatus of claim 31, further comprising a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 35. The apparatus of claim 34, further comprising a hydrogel layer on the silicon containing oxide layer.
- 36. The apparatus of claim 31, further comprising a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 37. The apparatus of claim 31, further comprising a porous substrate coupled to the at least one elongated carbon nanostructure.
- 38. The apparatus of claim 37, further comprising a buffer layer of metalization coupled between the porous substrate and the at least one elongated carbon nanostructure.
- 39. The apparatus of claim 31, further comprising DNA complexed to at least a portion of the tip of the carbon nanostructure.
- 40. The apparatus of claim 31, further comprising carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 41. The apparatus of claim 40, wherein DNA is covalently bound to at least a portion of the surface of the tip.
- 42. The apparatus of claim 31, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon.
- 43. The apparatus of claim 42, wherein the nitrogenated carbon bears an overall positive charge in physiological buffers and electrostatically retains DNA.
- 44. An apparatus, comprising:
at least one elongated carbon nanostructure including a tip; and a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 45. The apparatus of claim 44, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 46. The apparatus of claim 44, further comprising a hydrogel layer on the silicon containing oxide layer.
- 47. The apparatus of claim 46, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 48. The apparatus of claim 44, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 49. The apparatus of claim 44, further comprising a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 50. The apparatus of claim 49, wherein the metalization includes at least one element selected from the group consisting of gold and tungsten.
- 51. The apparatus of claim 44, further comprising a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 52. The apparatus of claim 44, further comprising DNA complexed to at least a portion of the tip of the carbon nanostructure.
- 53. The apparatus of claim 44, further comprising carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 54. The apparatus of claim 53, wherein DNA is covalently bound to at least a portion of the surface of the tip.
- 55. The apparatus of claim 44, further comprising a porous substrate coupled to the at least one elongated carbon nanostructure.
- 56. The apparatus of claim 55, further comprising a buffer layer of metalization coupled between the porous substrate and the at least one elongated carbon nanostructure.
- 57. The apparatus of claim 44, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon.
- 58. The apparatus of claim 57, wherein the nitrogenated carbon bears an overall positive charge in physiological buffers and electrostatically retains DNA.
- 59. An apparatus, comprising:
at least one elongated carbon nanostructure including a tip; and a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 60. The apparatus of claim 59, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 61. The apparatus of claim 59, further comprising a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 62. The apparatus of claim 61, wherein the metalization includes at least one element selected from the group consisting of gold and tungsten.
- 63. The apparatus of claim 59, further comprising a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 64. The apparatus of claim 63, further comprising a hydrogel layer on the silicon containing oxide layer.
- 65. The apparatus of claim 59, further comprising DNA complexed to at least a portion of the tip of the carbon nanostructure.
- 66. The apparatus of claim 59, further comprising carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 67. The apparatus of claim 66, wherein DNA is covalently bound to at least a portion of the surface of the tip.
- 68. The apparatus of claim 59, further comprising a porous substrate coupled to the at least one elongated carbon nanostructure.
- 69. The apparatus of claim 68, further comprising a buffer layer of metalization coupled between the porous substrate and the at least one elongated carbon nanostructure.
- 70. The apparatus of claim 59, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon.
- 71. The apparatus of claim 70, wherein the nitrogenated carbon bears an overall positive charge in physiological buffers and electrostatically retains DNA.
- 72. An apparatus, comprising:
at least one elongated carbon nanostructure including a tip; and DNA complexed to at least a portion of the tip of the carbon nanostructure.
- 73. The apparatus of claim 72 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 74. The apparatus of claim 72 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 75. The apparatus of claim 74, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 76. The apparatus of claim 72, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 77. The apparatus of claim 72, further comprising a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 78. The apparatus of claim 77, wherein the metalization includes at least one element selected from the group consisting of gold and tungsten.
- 79. The apparatus of claim 72, further comprising a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 80. The apparatus of claim 79, further comprising a hydrogel layer on the silicon containing oxide layer.
- 81. The apparatus of claim 72, further comprising a porous substrate coupled to the at least one elongated carbon nanostructure.
- 82. The apparatus of claim 81, further comprising a buffer layer of metalization coupled between the porous substrate and the at least one elongated carbon nanostructure.
- 83. The apparatus of claim 72, further comprising a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 84. The apparatus of claim 72, further comprising carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 85. The apparatus of claim 84, wherein DNA is covalently bound to at least a portion of the surface of the tip.
- 86. The apparatus of claim 72, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon.
- 87. The apparatus of claim 86, wherein the nitrogenated carbon bears an overall positive charge in physiological buffers and electrostatically retains DNA.
- 88. An apparatus, comprising:
at least one elongated carbon nanostructure including a tip; and carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 89. The apparatus of claim 88, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 90. The apparatus of claim 88 wherein DNA is covalently bound to at least a portion of the surface of the tip.
- 91. The apparatus of claim 90, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 92. The apparatus of claim 88, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 93. The apparatus of claim 88, further comprising a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 94. The apparatus of claim 93, wherein the metalization includes at least one element selected from the group consisting of gold and tungsten.
- 95. The apparatus of claim 88, further comprising a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 96. The apparatus of claim 95, further comprising a hydrogel layer on the silicon containing oxide layer.
- 97. The apparatus of claim 88, further comprising a porous substrate coupled to the at least one elongated carbon nanostructure.
- 98. The apparatus of claim 97, further comprising a buffer layer of metalization coupled between the porous substrate and the at least one elongated carbon nanostructure.
- 99. The apparatus of claim 88, further comprising a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 100. The apparatus of claim 88, further comprising DNA complexed to at least a portion of the tip of the carbon nanostructure.
- 101. The apparatus of claim 88, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon.
- 102. The apparatus of claim 101, wherein the nitrogenated carbon bears an overall positive charge in physiological buffers and electrostatically retains DNA.
- 103. An apparatus, comprising:
at least one elongated carbon nanostructure including a tip, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon.
- 104. The apparatus of claim 103 wherein the nitrogenated carbon bears an overall positive charge in physiological buffers and electrostatically retains DNA.
- 105. The apparatus of claim 104, wherein the nitrogenated carbon is synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 106. The apparatus of claim 103, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 107. The apparatus of claim 103, further comprising a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 108. The apparatus of claim 107, wherein the metalization includes at least one element selected from the group consisting of gold and tungsten.
- 109. The apparatus of claim 103, further comprising a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 110. The apparatus of claim 109, further comprising a hydrogel layer on the silicon containing oxide layer.
- 111. The apparatus of claim 103, further comprising a porous substrate coupled to the at least one elongated carbon nanostructure.
- 112. The apparatus of claim 111, further comprising a buffer layer of metalization coupled between the porous substrate and the at least one elongated carbon nanostructure.
- 113. The apparatus of claim 103, further comprising a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 114. The apparatus of claim 103, further comprising DNA complexed to at least a portion of the tip of the carbon nanostructure.
- 115. The apparatus of claim 103, further comprising carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 116. The apparatus of claim 115 wherein DNA is covalently bound to at least a portion of the surface of the tip.
- 117. A method, comprising:
providing at least one elongated carbon nanostructure including a tip, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 118. The method of claim 117, further comprising coupling a porous substrate to the at least one elongated carbon nanostructure.
- 119. The method of claim 118, further comprising coupling a buffer layer of metalization between the porous substrate and the at least one elongated carbon nanostructure.
- 120. The method of claim 117, further comprising:
forming a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 121. The method of claim 117, further comprising:
forming a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 122. The method of claim 121, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 123. The method of claim 122, further comprising forming a hydrogel layer on the silicon containing oxide layer.
- 124. The method of claim 123, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 125. The method of claim 117, further comprising:
forming a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 126. The method of claim 117, further comprising:
complexing DNA to at least a portion of the tip of the carbon nanostructure.
- 127. The method of claim 126 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 128. The method of claim 126 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 129. The method of claim 128, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 130. The method of claim 117, further comprising:
forming carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 131. The method of claim 130, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 132. The method of claim 130, further comprising covalently bonding DNA to at least a portion of the surface of the tip.
- 133. The method of claim 132, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 134. The method of claim 117, further comprising:
forming a portion of the tip of the elongated carbon nanostructure that includes nitrogenated carbon synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 135. A method, comprising:
providing at least one elongated carbon nanostructure including a tip; and forming a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 136. The method of claim 135, further comprising coupling a porous substrate to the at least one elongated carbon nanostructure.
- 137. The method of claim 136, further comprising coupling a buffer layer of metalization between the porous substrate and the at least one elongated carbon nanostructure.
- 138. The method of claim 135, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 139. The method of claim 135, further comprising:
forming a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 140. The method of claim 139, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 141. The method of claim 139, further comprising forming a hydrogel layer on the silicon containing oxide layer.
- 142. The method of claim 141, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 143. The method of claim 135, further comprising:
forming a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 144. The method of claim 135, further comprising:
complexing DNA to at least a portion of the tip of the carbon nanostructure.
- 145. The method of claim 144 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 146. The method of claim 145 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 147. The method of claim 146, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 148. The method of claim 135, further comprising:
forming carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 149. The method of claim 148, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 150. The method of claim 148, further comprising covalently bonding DNA to at least a portion of the surface of the tip.
- 151. The method of claim 150, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 152. The method of claim 135, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 153. A method, comprising:
providing at least one elongated carbon nanostructure including a tip; and forming a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 154. The method of claim 153, further comprising coupling a porous substrate to the at least one elongated carbon nanostructure.
- 155. The method of claim 154, further comprising coupling a buffer layer of metalization between the porous substrate and the at least one elongated carbon nanostructure.
- 156. The method of claim 153, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 157. The method of claim 153, further comprising forming a hydrogel layer on the silicon containing oxide layer.
- 158. The method of claim 157, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 159. The method of claim 153, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 160. The method of claim 153, further comprising:
forming a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 161. The method of claim 153, further comprising:
forming a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 162. The method of claim 153, further comprising:
complexing DNA to at least a portion of the tip of the carbon nanostructure.
- 163. The method of claim 162 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 164. The method of claim 162 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 165. The method of claim 164, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 166. The method of claim 153, further comprising:
forming carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 167. The method of claim 166, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 168. The method of claim 166, further comprising covalently bonding DNA to at least a portion of the surface of the tip.
- 169. The method of claim 168, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 170. The method of claim 153, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 171. A method, comprising:
providing at least one elongated carbon nanostructure including a tip; and forming a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 172. The method of claim 171, further comprising coupling a porous substrate to the at least one elongated carbon nanostructure.
- 173. The method of claim 172, further comprising coupling a buffer layer of metalization between the porous substrate and the at least one elongated carbon nanostructure.
- 174. The method of claim 171, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 175. The method of claim 171, further comprising:
forming a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 176. The method of claim 171, further comprising:
forming a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 177. The method of claim 176, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 178. The method of claim 176, further comprising forming a hydrogel layer on the silicon containing oxide layer.
- 179. The method of claim 178, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 180. The method of claim 171, further comprising:
complexing DNA to at least a portion of the tip of the carbon nanostructure.
- 181. The method of claim 180 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 182. The method of claim 180 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 183. The method of claim 182, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 184. The method of claim 171, further comprising:
forming carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 185. The method of claim 184, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 186. The method of claim 184, further comprising covalently bonding DNA to at least a portion of the surface of the tip.
- 187. The method of claim 186, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 188. The method of claim 171, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 189. A method, comprising:
providing at least one elongated carbon nanostructure including a tip; and complexing DNA to at least a portion of the tip of the carbon nanostructure.
- 190. The method of claim 189, further comprising coupling a porous substrate to the at least one elongated carbon nanostructure.
- 191. The method of claim 190, further comprising coupling a buffer layer of metalization between the porous substrate and the at least one elongated carbon nanostructure.
- 192. The method of claim 189 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 193. The method of claim 189 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 194. The method of claim 193, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 195. The method of claim 189, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 196. The method of claim 189, further comprising:
forming a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 197. The method of claim 189, further comprising:
forming a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 198. The method of claim 197, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 199. The method of claim 197, further comprising forming a hydrogel layer on the silicon containing oxide layer.
- 200. The method of claim 199, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 201. The method of claim 189, further comprising:
forming a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 202. The method of claim 189, further comprising:
forming carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 203. The method of claim 202, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 204. The method of claim 202, further comprising covalently bonding DNA to at least a portion of the surface of the tip.
- 205. The method of claim 204, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 206. The method of claim 189, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 207. A method, comprising:
providing at least one elongated carbon nanostructure including a tip; and forming carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 208. The method of claim 207, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 209. The method of claim 207, further comprising covalently bonding DNA to at least a portion of the surface of the tip.
- 210. The method of claim 209, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 211. The method of claim 207, further comprising coupling a porous substrate to the at least one elongated carbon nanostructure.
- 212. The method of claim 211, further comprising coupling a buffer layer of metalization between the porous substrate and the at least one elongated carbon nanostructure.
- 213. The method of claim 207, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 214. The method of claim 207, further comprising:
forming a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 215. The method of claim 207, further comprising:
forming a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 216. The method of claim 215, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 217. The method of claim 215, further comprising forming a hydrogel layer on the silicon containing oxide layer.
- 218. The method of claim 217, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 219. The method of claim 207, further comprising:
forming a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 220. The method of claim 207, further comprising:
complexing DNA to at least a portion of the tip of the carbon nanostructure.
- 221. The method of claim 220 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 222. The method of claim 221 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 223. The method of claim 222, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 224. The method of claim 207, wherein a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 225. A method, comprising:
providing at least one elongated carbon nanostructure including a tip, wherein at least a portion of the tip of the elongated carbon nanostructure includes nitrogenated carbon synthesized from a plasma enhanced chemical vapor deposition with a carbonaceous source gas and a nitrogenated etch gas.
- 226. The method of claim 225, further comprising coupling a porous substrate to the at least one elongated carbon nanostructure.
- 227. The method of claim 226, further comprising coupling a buffer layer of metalization between the porous substrate and the at least one elongated carbon nanostructure.
- 228. The method of claim 225, wherein the tip of the elongated carbon nanostructure includes a catalyst having an exposed portion, and wherein the exposed portion of the catalyst defines a localized handle for retention of a material.
- 229. The method of claim 225, further comprising:
forming a metalization layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 230. The method of claim 225, further comprising:
forming a silicon containing oxide layer coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 231. The method of claim 230, wherein the silicon containing oxide layer is deposited by plasma enhanced chemical vapor deposition.
- 232. The method of claim 230, further comprising forming a hydrogel layer on the silicon containing oxide layer.
- 233. The method of claim 232, wherein the hydrogel layer is formed by polymerizing acrylimide and p-n-isoproply acrylammide.
- 234. The method of claim 225, further comprising:
forming a thermally reactive coating coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 235. The method of claim 225, further comprising:
complexing DNA to at least a portion of the tip of the carbon nanostructure.
- 236. The method of claim 235 wherein the DNA is complexed using at least one member selected from the group consisting of cations and cationic agents.
- 237. The method of claim 235 wherein the DNA is complexed using a cationic lipofective reagent and a concentrated precipitant.
- 238. The method of claim 237, wherein the cationic lipofective reagent includes spermidine and the concentrated precipitant includes CaCl2.
- 239. The method of claim 225, further comprising:
forming carboxylic acids coupled to at least a portion of a surface of the tip of the elongated carbon nanostructure.
- 240. The method of claim 239, wherein the carboxylic acids are formed with an oxygen containing plasma.
- 241. The method of claim 239, further comprising covalently bonding DNA to at least a portion of the surface of the tip.
- 242. The method of claim 241, wherein the DNA is covalently bound to at least a portion of the surface of the tip using an EDC-mediated (1-ethyl-3-(3-dimethylaminopropyl)carbodiimide) condensation reaction between the carboxylic acids and DNA base amines.
- 243. An apparatus, comprising:
a porous substrate; and an elongated carbon nanostructure coupled to the porous substrate.
- 244. The apparatus of claim 243, further comprising a buffer layer of metalization coupled between the porous substrate and the elongated carbon nanostructure.
- 245. The apparatus of claim 243, further comprising another elongated carbon nanostructure coupled to the porous substrate.
STATEMENT AS TO RIGHTS TO INVENTIONS MADE UNDER FEDERALLY-SPONSORED RESEARCH OR DEVELOPMENT
[0001] This invention was made with United States Government support under prime contract No. DE-AC05-00OR22725 to UT-Battelle, L.L.C. awarded by the Department of Energy. The Government has certain rights in this invention.