Claims
- 1. A structure, comprising:
a substrate; a template structure located on the substrate, wherein the template structure comprises at least two surfaces; a first plurality of carbon nanotubes disposed on a first surface of the template structure, wherein the first plurality of carbon nanotubes are controllably aligned in a first direction perpendicular to the first surface of the template structure; and a second plurality of carbon nanotubes disposed on a second surface of the template structure, wherein the second plurality of carbon nanotubes are controllably aligned in a second direction perpendicular to the second surface of the template structure, such that the first direction is different than the second direction.
- 2. The structure of claim 1, wherein:
the template structure comprises a silicon dioxide structure that is not coated with a metal catalyst; the first surface comprises an upper surface of the template structure; the second surface comprises a side surface of the template structure; the side surface of the template structure is over 200 nm high; the substrate comprises a silicon substrate; the first plurality of carbon nanotubes are arranged perpendicular to the second plurality of carbon nanotubes; the second plurality of carbon nanotubes are arranged parallel to the substrate surface; and the first and the second plurality of carbon nanotubes are not disposed on exposed portions of the silicon substrate.
- 3. The structure of claim 1, wherein:
the second surface comprises one side surface of the template structure; the template structure contains a plurality of side surfaces; and the second plurality of carbon nanotubes are located on the plurality of side surfaces of the template structure and are controllably aligned in directions perpendicular to the plurality of the side surfaces of the template structure.
- 4. The structure of claim 1, wherein:
the second surface comprises a side surface of the template structure; the template structure comprises a cylinder containing one side surface; and the second plurality of carbon nanotubes are controllably aligned in a direction perpendicular to the side surface of the template structure.
- 5. The structure of claim 1, wherein:
the second surface of the template structure comprises a side surface with an oblique inclination which is neither orthogonal nor parallel with respect to an upper plane of the substrate; and the second plurality of carbon nanotubes comprise a membrane having an open truncated cone shape.
- 6. The structure of claim 1, further comprising a plurality of template structures located on the substrate.
- 7. The structure of claim 6, wherein:
a first template structure comprises at least one side surface and a third plurality of carbon nanotubes disposed on the at least one side surface of the first template structure; a second template structure is located adjacent to the first template structure, wherein the second template structure comprises at least one side surface and a fourth plurality of carbon nanotubes disposed on the at least one side surface of the second template structure; and the third plurality of carbon nanotubes are parallel to and contact the fourth plurality of carbon nanotubes.
- 8. The structure of claim 6, wherein:
a first template structure comprises at least one side surface and a third plurality of carbon nanotubes disposed on the at least one side surface of the first template structure; a second template structure is located adjacent to the first template structure, wherein the second template structure comprises:
at least one side surface having at least one exposed portion and at least one covered portion covered by a masking layer; and a fourth plurality of carbon nanotubes disposed on the at least one exposed portion of the at least one side surface of the second template structure; the third plurality of carbon nanotubes are parallel to the fourth plurality of carbon nanotubes; and the third plurality of carbon nanotubes contact the masking layer located on the at least one covered portion of the at least one side surface of the second template structure.
- 9. The structure of claim 1, wherein the template structure comprises an aluminum oxide or an indium tin oxide template structure.
- 10. A structure, comprising:
a substrate; a template structure located on the substrate, wherein the template structure comprises at least one side surface with an oblique inclination which is neither orthogonal nor parallel with respect to an upper plane of the substrate; and a first plurality of carbon nanotubes located on the at least one side surface of the template structure, wherein the first plurality of carbon nanotubes comprise a membrane having an open truncated cone shape.
- 11. The structure of claim 10, wherein:
the template structure comprises a silicon dioxide structure; the substrate comprises a silicon substrate; and the first plurality of carbon nanotubes are not disposed on exposed portions of the silicon substrate.
- 12. A porous carbon nanotube film comprising:
a plurality of carbon nanotubes aligned lengthwise in a first direction; and a plurality of first pores extending through the film in the first direction.
- 13. A structure comprising:
the film of claim 12; and a porous template material having a plurality of second pores of a controlled size; wherein first ends of the plurality of carbon nanotubes are attached to the porous template material such that the plurality of first pores in the film have a controlled size and are aligned with a plurality of the second pores in the template material.
- 14. The structure of claim 13, wherein:
the substrate comprises a silicon substrate; the template material comprises silicon dioxide; the template material is located on a substrate; the plurality of second pores extend to a surface of the substrate; and carbon nanotubes are not disposed on portions of the substrate exposed through the second plurality of pores.
- 15. The structure of claim 12, further comprising a template material having a plurality of first regions masked by a masking material, wherein first ends of the plurality of carbon nanotubes are attached to the template material such that the plurality of first pores in the film have a controlled size and are aligned with the plurality of first regions masked by the masking material.
- 16. An article of manufacture comprising a plurality oxide particles containing carbon nanotubes on the oxide particle surfaces, wherein the carbon nanotubes are aligned perpendicular to the oxide particle surfaces.
- 17. A structure, comprising:
a substrate; a template structure located on the substrate; a masking material covering a first portion of the template structure; and a first plurality of carbon nanotubes located on a second portion of the template structure not covered by the masking material, wherein carbon nanotubes are not located on the masking material or on exposed portions of the substrate.
- 18. The structure of claim 17, further comprising a plurality of template structures located on the substrate.
- 19. The structure of claim 17, wherein:
a first template structure comprises at least one side surface and a second plurality of carbon nanotubes disposed on the at least one side surface of the first template structure; a second template structure is located adjacent to the first template structure, wherein the second template structure comprises at least one side surface having at least one covered portion covered by a layer of the masking material; and the second plurality of carbon nanotubes contact the layer of masking material located on the at least one covered portion of the at least one side surface of the second template structure.
- 20. The structure of claim 19, wherein the masking material comprises a metal, such that a metal-nanotube contact structure is formed where the second plurality of carbon nanotubes contact the metal masking material.
- 21. The structure of claim 20, wherein:
the substrate comprises single crystal silicon, polysilicon, copper or gold; the template material comprises silicon dioxide, silicon oxynitride, magnesium oxide, aluminum oxide or indium tin oxide; and carbon nanotubes are not disposed on exposed portions of the substrate and on the masking material.
- 22. The structure of claim 19, wherein:
the template material comprises silicon dioxide; and the masking material comprises polysilicon, copper or gold.
- 23. The structure of claim 19, wherein:
the second template structure comprises at least one exposed portion; a third plurality of carbon nanotubes are disposed on the at least one exposed portion of the second template structure; and the second plurality of carbon nanotubes are parallel to the third plurality of carbon nanotubes.
- 24. The structure of claim 18, wherein:
a spacing between a first and a second template structure differs from a spacing between a second and a third template structure; the first plurality of nanotubes comprise nanotube bridges which connect the first template structure to a second template structure and which connect the second template structure to the third template structure; and the nanotube bridges extend parallel to a surface of the substrate.
- 25. A method of making carbon nanotubes, comprising:
providing a substrate containing a template structure having at least two surfaces; providing a nanotube source gas onto the template structure; and selectively and simultaneously growing the carbon nanotubes on the at least two surfaces of the template structure but not on exposed portions of the substrate such that the grown carbon nanotubes are controllably aligned in a direction perpendicular to a respective surface of the template structure.
- 26. The method of claim 25, wherein the nanotube source gas comprises xylenes and ferrocene provided onto the template structure in a chemical vapor deposition apparatus.
- 27. The method of claim 26, wherein:
the carbon nanotubes comprise multiwalled carbon nanotubes; carbon nanotubes are grown at a temperature of 600 to 1100° C.; the substrate comprises a silicon substrate; the template structure comprises a silicon dioxide template structure that is not coated with a carbon nanotube growth catalyst; and the carbon nanotubes simultaneously grow in orthogonal directions on orthogonal template structure surfaces.
- 28. The method of claim 25, wherein the carbon nanotubes simultaneously grow on plural side surfaces of the template structure in a direction parallel to a surface of the substrate.
- 29. The method of claim 25, wherein the carbon nanotubes simultaneously grow on an upper surface and on at least one side surface of the template structure.
- 30. The method of claim 25, wherein the carbon nanotubes simultaneously selectively grow in different directions on plural surfaces of the template structure.
- 31. A method of making carbon nanotubes, comprising:
providing a substrate containing a template structure, wherein the template structure comprises at least one inclined surface with an oblique inclination which is neither orthogonal nor parallel with respect to an upper plane of the substrate; providing a nanotube source gas onto the template structure; and selectively growing the carbon nanotubes on the inclined surface of the template structure but not on exposed portions of the substrate, such that the grown carbon nanotubes comprise a membrane having an open truncated cone shape.
- 32. The method of claim 31, wherein:
the nanotube source gas comprises xylenes and ferrocene provided onto the template structure in a chemical vapor deposition apparatus at a temperature of 600 to 1100° C.; the carbon nanotubes comprise multiwalled carbon nanotubes; the substrate comprises a silicon substrate; and the template structure comprises a silicon dioxide template structure.
- 33. The method of claim 31, wherein the carbon nanotubes simultaneously grow on an upper surface and on the inclined surface of the template structure.
- 34. The method of claim 31, further comprising forming a masking layer on an upper surface of the template structure, such that the carbon nanotubes selectively grow on the inclined surface of the template structure but not on the upper surface of the template structure.
- 35. A method of making a porous carbon nanotube film, comprising:
providing a substrate containing a porous template layer on the substrate, such that portions of the substrate are exposed through pores in the porous template layer; providing a nanotube source gas onto the porous template layer; and selectively growing the carbon nanotubes on the porous template layer but not on portions of the substrate exposed through pores in the porous template layer to form the porous carbon nanotube film.
- 36. The method of claim 35, wherein:
the nanotube source gas comprises xylenes and ferrocene provided onto the template layer in a chemical vapor deposition apparatus at a temperature of 600 to 1100° C.; the carbon nanotubes comprise multiwalled carbon nanotubes; the substrate comprises a silicon substrate; and the template layer comprises a silicon dioxide template layer.
- 37. The method of claim 35, wherein the template layer thickness is not sufficient to allow nanotube growth on side surfaces of the pores in the template layer.
- 38. The method of claim 35, further comprising selectively removing the substrate to form a free standing porous nanotube film.
- 39. A method of making carbon nanotubes, comprising:
providing a substrate containing a template structure having at least a portion covered by a masking material; providing a nanotube source gas onto the template structure; and selectively growing the carbon nanotubes on an exposed portion of the template structure but not on exposed portions of the substrate.
- 40. The method of claim 39, wherein:
a plurality of template structures having at least at least a portion covered by a masking material are located on the substrate; and the step of selectively growing the carbon nanotubes comprises selectively growing the carbon nanotubes on exposed portions of the template structures but not on portions of the template structures covered by the masking material.
- 41. The method of claim 40, wherein:
the portions of the template structures covered by the masking material comprise at least first portions of side surfaces of the template structures; the exposed portions of the template structure comprise at least second portions of side surfaces of the template structures; and the carbon nanotubes selectively grow on the exposed portions of the template structure parallel to an upper surface of the substrate.
- 42. The method of claim 41, wherein:
the portions of the template structures covered by the masking material comprise upper surfaces of the template structures and first side surfaces of the template structures; the exposed portions of the template structures comprises second side surfaces of the template structures.
- 43. The method of claim 42, wherein the nanotube source gas is provided for a sufficient time to allow the carbon nanotubes growing on the exposed portion of a first template structure to contact the masking material covering the covered portion of an adjacent second template structure to form a nanotube bridge between the first and the second template structures.
- 44. The method of claim 43, wherein the masking material comprises a metal layer.
- 45. The method of claim 43, wherein:
the substrate comprises silicon or gold; and the template material comprises silicon dioxide, silicon oxynitride, magnesium oxide, aluminum oxide or indium tin oxide.
- 46. The method of claim 40, comprising simultaneously growing carbon nanotubes of a different length by providing the nanotube source gas for a sufficient time to allow the carbon nanotubes growing on the exposed portions of template structures to contact the masking material covering the covered portions of adjacent template structures.
- 47. The method of claim 39, wherein the step of selectively growing the carbon nanotubes comprises simultaneously growing the carbon nanotubes of a first length on an exposed portion of the template structure and growing nanotubes of a second length less than the first length on the masking material.
- 48. A method of making carbon nanotubes, comprising:
providing a first material which facilitates growth of carbon nanotubes; covering at least a portion of the first material with a masking material; providing a nanotube source gas onto the first material; and growing the carbon nanotubes of a first length on an exposed portion of the first material while simultaneously either growing carbon nanotubes of a second length less than the first length on the masking material or not growing carbon nanotubes on the masking material.
- 49. The method of claim 48, wherein:
the masking material thickness is less than a critical thickness at which carbon nanotubes do not grow on the masking material during growth on the first material; and the carbon nanotubes simultaneously grow in a first direction on the exposed portion of the first material and in a second direction on the masking material.
- 50. The method of claim 49, wherein:
the nanotube source gas comprises xylenes and ferrocene provided onto the template structure in a chemical vapor deposition apparatus at a temperature of 600 to 1100° C.; the carbon nanotubes comprise multiwalled carbon nanotubes; the first material comprises silicon dioxide; and the masking material comprises a gold layer having a thickness less than 20 nm.
- 51. The method of claim 48 wherein:
the nanotube source gas comprises xylenes and ferrocene provided onto the template structure in a chemical vapor deposition apparatus at a temperature of 600 to 1100° C.; the carbon nanotubes comprise multiwalled carbon nanotubes; the first material comprises silicon dioxide; the masking material comprises a continuous gold layer; and the carbon nanotubes grow in a first direction on the exposed portion of the first material and do not grow on the masking material.
- 52. A method of making carbon nanotubes, comprising:
providing a growth surface which facilitates growth of carbon nanotubes; providing a nanotube source gas onto the growth surface; and controllably growing the carbon nanotubes of different length during a same deposition step.
- 53. The method of claim 52, wherein:
the growth surface comprises a plurality of differently spaced template structures on a substrate; and controllably growing the carbon nanotubes of different length comprises providing the nanotube source gas for a sufficient time to allow the carbon nanotubes growing on the template structures to contact the adjacent template structures having a desired inter structure spacing.
- 54. The method of claim 52, wherein controllably growing the carbon nanotubes of different length comprises growing the carbon nanotubes on the masking material and on a template material or on a plurality of masking layers of a different thickness.
- 55. A method of making carbon nanotubes, comprising:
providing a substrate containing a template structure comprising alumina, indium tin oxide, silicon oxynitride, gold or copper; providing a nanotube source gas onto the template structure; and selectively growing the nanotubes on the template structure but not on exposed portions of the substrate.
- 56. The method of claim 55, wherein:
the nanotube source gas comprises xylenes and ferrocene provided onto the template structure in a chemical vapor deposition apparatus at a temperature of 600 to 1100° C.; the carbon nanotubes comprise multiwalled carbon nanotubes; the substrate comprises a silicon substrate; and the carbon nanotubes simultaneously grow in orthogonal directions on upper and side template structure surfaces.
- 57. A method of making a device containing carbon nanotubes, comprising:
providing a substrate containing a template structure; providing a nanotube source gas onto the template structure; selectively growing a carbon nanotube structure on the template structure but not on exposed portions of the substrate; removing the carbon nanotube structure from the substrate; and placing the carbon nanotube structure into the device.
- 58. The method of claim 57, wherein the carbon nanotube structure comprises a pillar or platelet of vertically aligned nanotubes.
- 59. The method of claim 58, wherein the carbon nanotube structure comprises a fiber of vertically aligned nanotubes.
- 60. The method of claim 57, further comprising removing the template structure along with the carbon nanotube structure from the substrate.
- 61. A structure comprising:
at least one suspended template material layer; a first aligned carbon nanotube layer located on a first surface of the template material layer; and a second aligned carbon nanotube layer located on a second surface of the template material layer, located opposite to the first surface.
- 62. The structure of claim 61, wherein the suspended template material layer comprises a template material cantilever or membrane supported on a portion of a substrate that does not catalyze carbon nanotube growth.
- 63. The structure of claim 61, further comprising a third aligned carbon nanotube layer located on an edge surface of the template material layer, such that the third aligned carbon nanotube layer is located perpendicular to the first and the second aligned carbon nanotube layers.
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS
[0001] The present application claims benefit under 35 U.S.C. §119(e) of U.S. provisional applications 60/356,069, filed Feb. 11, 2002 and 60/385,393, filed Jun. 3, 2002, both of which are incorporated herein by reference in their entirety.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] The U.S. Government may have certain rights in this invention pursuant to grant number N00014-00-1-2050 from the Office of Naval Research.
Provisional Applications (2)
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Number |
Date |
Country |
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60356069 |
Feb 2002 |
US |
|
60385393 |
Jun 2002 |
US |