Claims
- 1. A carbon nanotube material comprising a microparticulate carbide or oxide material, said microparticulate carbide or oxide material existing substantially on the surface of said carbon nanotube material.
- 2. The carbon nanotube material of claim 1, wherein the microparticulate carbide or oxide material exists substantially as carbide nanoparticles on the surface of the carbon nanotube material.
- 3. The carbon nanotube material of claim 1, wherein the microparticulate carbide or oxide material exists substantially as carbide or oxide nanolumps on the surface of the carbon nanotube material.
- 4. The carbon nanotube material of claim 3, wherein the carbide or oxide nanolumps have an average diameter ranging from 10 to 200 nanometers.
- 5. The carbon nanotube material of claim 3, wherein the carbide or oxide nanolumps have an average diameter of about 80 nanometers.
- 6. The carbon nanotube material of claim 3, wherein the carbide or oxide nanolumps reside proximally to one another and remain bound to the surface of said carbon nanotube material by physical or chemical bonding.
- 7. The carbon nanotube material of claim 6, wherein the carbide or oxide nanolumps have an inter-particle spacing ranging from 30 to 500 nanometers.
- 8. The carbon nanotube material of claim 6, wherein the carbide or oxide nanolumps have an inter-particle spacing ranging from 50 to 100 nanometers.
- 9. The carbon nanotube material of claim 1, wherein the microparticulate carbide material is a metallic or a non-metallic carbide.
- 10. The microparticulate carbide material of claim 9, that is chosen from the group consisting of boron carbide, silicon carbide, magnesium carbide, titanium carbide, and nobium carbide.
- 11. The microparticulate carbide material of claim 9, that is boron carbide.
- 12. The microparticulate carbide material of claim 11, wherein the boron carbide has the formula BxCy, wherein x is 4 to 50 and y is 1 to 4.
- 13. The carbon nanotube material of claim 12, wherein the boron carbide (BxCy) has a stoichiometry selected from the group consisting of B4C, B10C, B13C, B12C3, B50C2, B50C, B48C3, B51C, B49C3, B8C, B12C, B12C2 and B11C4.
- 14. The microparticulate carbide material of claim 12, wherein the boron carbide has the formula B4C.
- 15. The carbon nanotube material of claim 1, wherein the oxide material is a metallic or non-metallic oxide.
- 16. The carbon nanotube material of claim 15, wherein the oxide material is magnesium oxide (MgO) or boron oxide (B2O3).
- 17. The carbon nanotube material of claim 1, wherein the carbon nanotube material is a multi-walled carbon nanotube morphology.
- 18. The carbon nanotube material of claim 17, wherein a microparticulate carbide material is covalently bonded to the multi-walled carbon nanotube material.
- 19. The carbon nanotube material of claim 1, wherein the microparticulate carbide material exists as a stable single phase in a homogeneity ranging from 8 to 20 atom % carbon.
- 20. The carbon nanotube material of claim 1, wherein the carbon nanotubes material have a knotted rope-shaped morphology.
- 21. The carbon nanotube material of claim 1, wherein the carbon nanotubes have a bone-shaped morphology.
- 22. A method of manufacturing a carbon nanotube material comprising a microparticulate carbide material, said microparticulate carbide material existing substantially on the surface of said carbon nanotube material comprising the steps of:
a) contacting a plurality of carbon nanotubes with a mineral acid; b) mixing the acid-treated carbon nanotubes with a carbide forming source material to form a mixture thereof; c) enclosing the mixture of carbon nanotubes and carbide forming source material within a metallic material; d) placing the metal material containing the mixture of carbon nanotubes and carbide forming source material in a heating chamber; e) subjecting the heating chamber to a reduced pressure atmosphere; and f) maintaining the heating chamber at an elevated sufficient to cause formation of microparticulate carbide material on the surface of the carbon nanotube material.
- 23. The method of claim 22, wherein the carbide forming source material is a powder.
- 24. The method of claim 22, wherein the carbide forming source material is a boron source powder.
- 25. The method of claim 22, wherein the reduced presure atmosphere is below 0.5 torr.
- 26. The method of claim 20, wherein the boron source powder is selected from the group consisting of magnesium dibromide (MgB2), aluminum dibromide (AlB2), calcium dibromide (CaB2), and gallium dibromide (GaB2).
- 27. The method of claim 22, wherein the boron source powder is magnesium dibromide (MgB2).
- 28. The method of claim 22, wherein the mineral acid is selected from the group consisting of hydrofluoric acid (HF), hydrochloric acid (HCl), hydrobromic acid (HBr), hydroiodic acid (HI), sulfuric acid (H2SO4) and nitric acid (HNO3).
- 29. The method of claim 22, wherein the mineral acid is nitic acid (HNO3) or hydrochloric acid (HCl).
- 30. The method of claim 22, wherein the metallic material is a Tantalum (Ta) foil.
- 31. The method of claim 22, wherein the temperature of the heating chamber is 500° C. to 2000° C.
- 32. The method of claim 22, wherein the temperature of the heating chamber is 1100° C. to 1150° C.
- 33. The method of claim 22, wherein the method comprises a solid state reaction between a boron source material and the carbon nanotubes.
- 34. The method of claim 22, wherein the microparticulate carbide material exists substantially as carbide nanoparticles on the surface of the carbon nanotube material.
- 35. The method of claim 22, wherein the microparticulate carbide material exists substantially as carbide nanolumps on the surface of the carbon nanotube material.
- 36. The method of claim 35, wherein the carbide nanolumps have an average diameter ranging from 10 to 200 nanometers.
- 37. The method of claim 35, wherein the carbide nanolumps have an average diameter of about 80 nanometers.
- 38. The method of claim 33, wherein the carbide nanolumps reside proximally to one another and remain bound to the surface of said carbon nanotube material by physical or chemical bonding.
- 39. The method of claim 38, wherein the carbide nanolumps have an inter-particle spacing ranging from 30 to 500 nanometers.
- 40. The method of claim 38, wherein the carbide nanolumps have an inter-particle spacing ranging from 50 to 100 nanometers.
- 41. The method of claim 22, wherein the microparticulate carbide material is a metallic or a non-metallic carbide.
- 42. The method of claim 41, that is chosen from the group consisting of boron carbide, silicon carbide, magnesium carbide, titanium carbide, and nobium carbide.
- 43. The method of claim 42, that is boron carbide.
- 44. The method of claim 43, wherein the boron carbide has the formula BxCy, wherein x is 4 to 50 and y is 1 to 4.
- 45. The method of claim 44, wherein the boron carbide (BxCy) has a stoichiometry selected from the group consisting of B4C, B10C, B13C, B12C3, B50C2, B50C, B48C3, B51C, B49C3, B8C, B12C, B12C2 and B11C4.
- 46. The method of claim 44, wherein the boron carbide has the formula B4C.
- 47. The method of claim 22, wherein the carbon nanotube material is a multi-walled carbon nanotube morphology.
- 48. The method of claim 47, wherein the microparticulate carbide material is covalently bonded to the multi-walled carbon nanotube material.
- 49. The method of claim 22, wherein the microparticulate carbide material exists as a stable single phase in a homogeneity ranging from 8 to 20 atom % carbon.
- 50. The method of claim 22, wherein the carbon nanotubes material have a knotted rope-shaped morphology.
- 51. The method of claim 22, wherein the carbon nanotubes have a bone-shaped morphology.
- 52. A method of forming a composite material comprising a carbon nanotube material and a matrix material, said method comprising the step of combining said carbon nanotube material with a matrix material to form a composite material, wherein the carbon nanotube material comprises a microparticulate carbide or oxide material.
- 53. The method of claim 52, wherein the microparticulate carbide material exists substantially as carbide nanolumps on the surface of the carbon nanotube material.
- 54. A composite material comprising a carbon nanotube material and a matrix material, said carbon nanotube material comprising a microparticulate carbide material.
- 55. The composite material of claim 54, wherein the microparticulate carbide material is substantially on the surface of said carbon nanotube material.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/347,808, filed on Jan. 11, 2002, which is hereby incorporated herein by reference in its entirety.
GOVERNMENT SUPPORT
[0002] The present invention was made with partial support from The US Army Natick Soldier Systems Center (DAAD, Grant Number 16-00-C-9227), Department of Energy (Grant Number DE-FG02-00ER45805) and The National Science Foundation (Grant Number DMR-9996289)
Provisional Applications (1)
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Number |
Date |
Country |
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60347808 |
Jan 2002 |
US |