Claims
- 1. A coiled carbon nanotube having a non-hexagonal/hexagonal carbon ring ratio in the range of 0.1:1 to 1:1.
- 2. The coiled carbon nanotube of claim 1 wherein the non-hexagonal/hexagonal carbon ring ratio is 0.1:1.
- 3. The coiled carbon nanotube of claim 1 wherein the non-hexagonal/hexagonal carbon ring ratio is 1:1.
- 4. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a substantially uniform distance between coils throughout its length.
- 5. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a substantially uniform diameter throughout its length.
- 6. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a substantially uniform distance between coils and diameter throughout its length
- 7. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a diameter of less than 1000 nm.
- 8. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a diameter of less than 100 nm.
- 9. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a distance between coils of less than 1000 nm.
- 10. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a distance between coils of less than 200 nm.
- 11. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a diameter of less than 1000 nm and a distance between coils of less than 1000 nm.
- 12. The coiled carbon nanotube of claim 1 wherein the nanotube comprises a diameter of less than 100 nm and a distance between coils of less than 200 nm.
- 13. A coiled carbon nanotube having a substantially uniform diameter throughout its length.
- 14. The coiled carbon nanotube of claim 13 wherein the nanotube comprises a diameter of less than 1000 nm.
- 15. The coiled carbon nanotube of claim 13 wherein the nanotube comprises a diameter of less than 100 nm.
- 16. A coiled carbon nanotube wherein the nanotube comprises a substantially uniform distance between coils throughout its length.
- 17. The coiled carbon nanotube of claim 16 wherein the nanotube comprises a distance between coils of less than 200 nm.
- 18. The coiled carbon nanotube of claim 16 wherein the nanotube comprises a distance between coils of less than 1000 nm.
- 19. A coiled carbon nanotube having a substantially uniform diameter and a substantially uniform distance between coils throughout its length.
- 20. The coiled carbon nanotube of claim 19 wherein the nanotube comprises a diameter of less than 1000 nm and a distance between coils of less than 1000 nm.
- 21. A method of manufacturing coiled carbon nanotubes, comprising:
placing a supported metal catalyst inside of a reaction chamber; creating a microwave field inside said reaction chamber; introducing a hydrocarbon source gas into said reaction chamber; and reacting for a time and at a temperature sufficient to form said coiled carbon nanotubes.
- 22. The method of claim 21, wherein an inert gas is introduced into said reaction chamber.
- 23. The method of claim 21, wherein said source gas is acetylene.
- 24. The method of claim 21, wherein said metal catalyst comprises a metal selected from the group consisting of iron, nickel, cobalt, and vanadium.
- 25. The method of claim 21, wherein said catalyst support is selected from the group consisting of silica, zeolite, and magnesium carbonate.
- 26. The method of claim 21, wherein said metal catalyst is iron and said catalyst support is magnesium carbonate.
- 27. The method of claim 21, wherein said metal catalyst is iron and said catalyst support is silica.
- 28. The method of claim 21, wherein said metal catalyst is nickel and said catalyst support is zeolite.
- 29. The method of claim 21, further comprising the use of a stirrer to make said microwave field uniform.
- 30. The method of claim 21, further comprising a stub tuner.
- 31. The method of claim 30, further comprising a port circulator for controlling said stub tuner.
- 32. The method of claim 21, further comprising a circulating chiller.
- 33. A method for manufacturing coiled carbon nanotubes, comprising:
placing a supported metal catalyst inside of a reaction chamber; creating a microwave field inside said reaction chamber; introducing a hydrocarbon source gas into said reaction chamber; using a feedback system to control the temperature inside said reaction chamber and the flow rate of said hydrocarbon source gas; and reacting for a time and at a temperature sufficient to form said coiled carbon nanotubes.
- 34. The method of claim 33, wherein an inert gas is introduced into said reaction chamber.
- 35. The method of claim 33, wherein said source gas is acetylene.
- 36. The method of claim 33, wherein said metal catalyst comprises a metal selected from the group consisting of iron, nickel, cobalt, and vanadium.
- 37. The method of claim 33, wherein said catalyst support is selected from the group consisting of silica, zeolite, and magnesium carbonate.
- 38. The method of claim 33, wherein said metal catalyst is iron and said catalyst support is magnesium carbonate.
- 39. The method of claim 33, wherein said metal catalyst is iron and said catalyst support is silica.
- 40. The method of claim 33, wherein said metal catalyst is nickel and said catalyst support is zeolite.
- 41. The method of claim 33, further comprising the use of a stirrer to make said microwave field uniform.
- 42. The method of claim 33, further comprising a stub tuner.
- 43. The method of claim 42, further comprising a port circulator for controlling said stub tuner.
- 44. The method of claim 33, further comprising a circulating chiller.
- 45. The method of claim 33, wherein said feedback system comprises:
a pyrometer; a switching power supply; a computer; a master flow controller; and a mass flow controller.
- 46. A coiled carbon nanotube produced by the process of:
placing a supported metal catalyst inside of a reaction chamber; creating a microwave field inside said reaction chamber; introducing a hydrocarbon source gas into said reaction chamber; and reacting for a time and at a temperature sufficient to form said coiled carbon nanotubes.
- 47. The coiled carbon nanotube of claim 46, wherein argon is introduced into said reaction chamber.
- 48. The coiled carbon nanotube of claim 46, wherein said source gas is acetylene.
- 49. The coiled carbon nanotube of claim 46, wherein said metal catalyst comprises a metal selected from the group consisting of iron, nickel, cobalt, and vanadium.
- 50. The coiled carbon nanotube of claim 46, wherein said catalyst support is selected from the group consisting of silica, zeolite, and magnesium carbonate.
- 51. The coiled carbon nanotube of claim 46, wherein said metal catalyst is iron and said catalyst support magnesium carbonate.
- 52. The coiled carbon nanotube of claim 46, wherein said metal catalyst is iron and said catalyst support is silica.
- 53. The coiled carbon nanotube of claim 46, wherein said metal catalyst is nickel and said catalyst support is zeolite.
- 54. The coiled carbon nanotube of claim 46, further comprising the use of a stirrer to make said microwave field uniform.
- 55. The coiled carbon nanotube of claim 46, further comprising a stub tuner.
- 56. The coiled carbon nanotube of claim 55, further comprising a port circulator for controling said stub tuner.
- 57. The coiled carbon nanotube of claim 46, further comprising a circulating chiller.
- 58. The coiled carbon nanotube of claim 46, further comprising the use of a feedback system to control the temperature inside said reaction chamber and the flow rate of said hydrocarbon source gas.
- 59. A coiled carbon nanotube produced by the process of claim 58, wherein said feedback system comprises:
a pyrometer; a switching power supply; a computer; a master flow controller; and a mass flow controller.
- 60. An article of manufacture produced by the process of:
placing a supported metal catalyst inside of a reaction chamber; creating a microwave field inside said reaction chamber; introducing a hydrocarbon source gas into said reaction chamber; and reacting for a time and at a temperature sufficient to form said coiled carbon nanotubes.
- 61. The article of manufacture of claim 60, wherein argon is introduced into said reaction chamber.
- 62. The article of manufacture of claim 60, wherein said source gas is acetylene.
- 63. The article of manufacture of claim 60, wherein said metal catalyst comprises a metal selected from the group consisting of iron, nickel, cobalt, and vanadium.
- 64. The article of manufacture of claim 60, wherein said catalyst support is selected from the group consisting of silica, zeolite, and magnesium carbonate.
- 65. The article of manufacture of claim 60, wherein said metal catalyst is iron and said catalyst support is magnesium carbonate.
- 66. The article of manufacture of claim 60, wherein said metal catalyst is iron and said catalyst support is silica.
- 67. The article of manufacture of claim 60, wherein said metal catalyst is nickel and said catalyst support is zeolite.
- 68. The article of manufacture of claim 60, further comprising the use of a stirrer to make said microwave field uniform.
- 69. The article of manufacture of claim 60, further comprising a stub tuner.
- 70. The article of manufacture of claim 69, further comprising a port circulator for controlling said stub tuner.
- 71. The article of manufacture of claim 60, further comprising a circulating chiller.
- 72. The article of manufacture of claim 60, further comprising the use of a feedback system for controling the temperature inside said reaction chamber and the flow rate of said hydrocarbon source gas.
- 73. The article of manufacture of claim 72, wherein said feedback system comprises:
a pyrometer; a switching power supply; a computer; a master flow controller; and a mass flow controller.
REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/431,888 filed Dec. 6, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60431888 |
Dec 2002 |
US |