Claims
- 1. An apparatus comprising an outer surface comprising anodized aluminum comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a surface and comprising a dispersion of a quantity of lubricity increasing agent in said film, said lubricity increasing agent being selected from the group consisting of sulfur, fluorine, and a combination thereof, said quantity and said dispersion being effective to produce a reduced coefficient of friction at said surface compared to a coefficient of friction of an amorphous carbon surface absent said lubricity increasing agent.
- 2. An apparatus comprising an outer surface comprising anodized aluminim comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent in said film, said lubricity increasing agent being selected from the group consisting sulfur, fluorine, and a combination thereof, said quantity and said dispersion being effective to produce a coefficient of friction at said surface of 0.1 or less.
- 3. An apparatus comprising an outer surface comprising anodized aluminim comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent in said film, said lubricity increasing agent being selected from the group consisting sulfur, fluorine, and a combination thereof, said quantity and said dispersion being effective to produce a coefficient of friction at said surface of less than 0.1.
- 4. An apparatus comprising an outer surface comprising anodized aluminim comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent in said film, said lubricity increasing agent being selected from the group consisting of sulfur, fluorine, and a combination thereof, said quantity and said dispersion being effective to produce a coefficient of friction at said surface of about 0.03 or less.
- 5. An apparatus comprising an outer surface comprising anodized aluminum comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a surface and comprising a dispersion of a quantity of sulfur in said film, said quantity and said dispersion being effective to produce a reduced coefficient of friction at said surface compared to a coefficient of friction of an amorphous carbon surface absent said sulfur.
- 6. An apparatus comprising an outer surface comprising anodized aluminim comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a dispersion of a quantity of sulfur in said film, said quantity and said dispersion being effective to produce a coefficient of friction at said surface of 0.1 or less.
- 7. An apparatus comprising an outer surface comprising anodized aluminim comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a dispersion of a quantity of sulfur in said film, said quantity and said dispersion being effective to produce a coefficient of friction at said surface of less than 0.1.
- 8. An apparatus comprising an outer surface comprising anodized aluminim comprising a film of amorphous carbon, said outer surface comprising pores substantially filled with said amorphous carbon, said film of amorphous carbon comprising a dispersion of a quantity of sulfur in said film, said quantity and said dispersion being effective to produce a coefficient of friction at said surface of about 0.03 or less.
- 9. The apparatus of claim 5 wherein said film further comprises silicon.
- 10. The apparatus of claim 6 wherein said film further comprises silicon.
- 11. The apparatus of claim 7 wherein said film further comprises silicon.
- 12. The apparatus of claim 8 wherein said film further comprises silicon.
- 13. The apparatus of claim 5 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 14. The apparatus of claim 6 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 15. The apparatus of claim 7 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 16. The apparatus of claim 8 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 17. The apparatus of claim 1 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substantially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 18. The apparatus of claim 2 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substantially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 19. The apparatus of claim 3 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substantially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 20. The apparatus of claim 4 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substantially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 21. The apparatus of claim 5 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substanially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 22. The apparatus of claim 6 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substantially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 23. The apparatus of claim 7 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substantially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 24. The apparatus of claim 8 comprising an interface between said anodized aluminum outer surface and said film of amorphous carbon, wherein said interface is substantially free of imperfections attributable to water molecules remaining adsorbed to said anodized aluminum outer surface during application of said film.
- 25. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of a lubricity-increasing agent effective to produce a lubricious surface having a first coefficient of friction that is less than a second coefficient of friction of an amorphous carbon surface absent said lubricity increasing agent.
- 26. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of a lubricity-increasing agent selected from the group consisting sulfur, fluorine, and a combination thereof, said dispersion and said quantity being effective to produce a lubricious surface having a coefficient of friction of 0.1 or less.
- 27. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of a lubricity-increasing agent selected from the group consisting sulfur, fluorine, and a combination thereof, said dispersion and said quantity being effective to produce a lubricious surface having a coefficient of friction of less than 0.1.
- 28. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of a lubricity-increasing agent selected from the group consisting sulfur, fluorine, and a combination thereof, said dispersion and said quantity being effective to produce a lubricious surface having a coefficient of friction of less than 0.03.
- 29. The method of claim 25 wherein said lubricity-increasing agent comprises sulfur.
- 30. The method of claim 26 wherein said lubricity-increasing agent comprises sulfur.
- 31. The method of claim 27 wherein said lubricity-increasing agent comprises sulfur.
- 32. The method of claim 28 wherein said lubricity-increasing agent comprises sulfur.
- 33. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of sulfur effective to produce a lubricous surface having a first coefficient of friction that is less than a second coefficient of friction of an amorphous carbon surface absent said lubricity increasing agent.
- 34. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of sulfur effective to produce a coefficient of friction at said surface of 0.1 or less.
- 35. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of sulfur effective to produce a coefficient of friction at said surface of less than 0.1.
- 36. A method for increasing lubricity of an amorphous carbon film comprising providing as a integral component of said film a dispersion of a quantity of sulfur effective to produce a coefficient of friction at said surface of 0.03 or less.
- 37. The method of claim 33 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 38. The method of claim 34 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 39. The method of claim 35 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 40. The method of claim 36 wherein said quantity of lubricity increasing agent is from about 27 wt % to about 31 wt %.
- 41. Means for making the film of the apparatus of claim 1.
- 42. A method for producing a lubricous amorphous carbon film comprising:
placing a component having a surface in a vacuum; condensing onto said surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of lubricious amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent, said dispersion and said quantity being effective to produce a lubricious amorphous carbon surface having a first coefficient of friction that is less than a second coefficient of friction of an amorphous carbon surface absent said lubricity increasing agent.
- 43. A method for producing a lubricious amorphous carbon film comprising:
placing a component having a surface in a vacuum; condensing onto said surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of lubricious amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent effective to produce a lubricious surface having a coefficient of friction of 0.1 or less.
- 44. A method for producing a lubricious amorphous carbon film comprising:
placing a component having a surface in a vacuum; condensing onto said surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of lubricous amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent in said film effective to produce a lubricious surface having a coefficient of friction of less than 0.1.
- 45. A method for producing a lubricious amorphous carbon film comprising:
placing a component having a surface in a vacuum; condensing onto said surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of lubricious amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent in said film effective to produce a lubricious surface having a coefficient of friction of about 0.03 or less.
- 46. The method of claim 42 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 47. The method of claim 43 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 48. The method of claim 44 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 49. The method of claim 45 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 50. The method of claim 42 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 51. The method of claim 43 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 52. The method of claim 44 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 53. The method of claim 45 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 54. The method of claim 46 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 55. The method of claim 47 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 56. The method of claim 48 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 57. The method of claim 49 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 58. A method for sealing a porous anodized aluminum surface comprising:
placing a component having an anodized aluminum surface in a vacuum; condensing onto said anodized aluminum surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of lubricious amorphous carbon comprising a dispersion of a quantity of lubricity increasing agent in said film, said quantity and said dispersion being effective to produce a lubricious surface having a first coefficient of friction that is less than a second coefficient of friction of an amorphous carbon surface absent said lubricity increasing agent.
- 59. A method for producing a lubricious amorphous carbon film comprising:
placing a component having a surface in a vacuum; condensing onto said surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of amorphous carbon comprising a lubricious surface and comprising a dispersion of a quantity of lubricity increasing agent in said film effective to produce a coefficient of friction at said lubricious surface of about 0.1 or less.
- 60. A method for producing a lubricious amorphous carbon film comprising:
placing a component having a surface in a vacuum; condensing onto said surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of amorphous carbon comprising a lubricious surface and comprising a dispersion of a quantity of lubricity increasing agent in said film effective to produce a coefficient of friction at said lubricious surface of less than 0.1.
- 61. A method for producing a lubricious amorphous carbon film comprising:
placing a component having a surface in a vacuum; condensing onto said surface a precursor material comprising a quantity of a lubricity increasing agent; bombarding said surface comprising said precursor material with an energetic beam of ions under conditions effective to convert said precursor material into a film of amorphous carbon comprising a lubricious surface and comprising a dispersion of a quantity of lubricity increasing agent in said film effective to produce a coefficient of friction at said lubricious surface of about 0.03 or less.
- 62. The method of claim 58 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 63. The method of claim 59 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 64. The method of claim 60 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 65. The method of claim 61 wherein said conditions comprise an energy for said energetic ion beam of from about 1 keV to about 1 Mev for a time and at a linear energy of transfer sufficient to convert said precursor material into said amorphous carbon.
- 66. The method of claim 58 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 67. The method of claim 59 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 68. The method of claim 60 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 69. The method of claim 61 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 70. The method of claim 62 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 71. The method of claim 63 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 72. The method of claim 64 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 73. The method of claim 65 wherein said vacuum comprises a pressure of about 10−6 torr or less.
- 74. The method of claim 58 wherein said energy of ion bombardment is between about 20-100 keV.
- 75. The method of claim 59 wherein said energy of ion bombardment is between about 20-100 keV.
- 76. The method of claim 60 wherein said energy of ion bombardment is between about 20-100 keV.
- 77. The method of claim 60 wherein said energy of ion bombardment is between about 20-100 keV.
Parent Case Info
[0001] The present application is a continuation of U.S. patent application Ser. No. 09/342,542, which is a continuation-in-part of U.S. patent application Ser. No. 09/026,451, filed Feb. 19, 1998, issued as U.S. Pat. No. 6,001,481; which was a continuation-in-part of U.S. patent application Ser. No. 08/662,728, filed Jun. 10, 1996, issued as U.S. Pat. No. 5,863,621; which was a continuation-in-part of U.S. patent application Ser. No. 08/400,612, filed Mar. 8, 1995, abandoned.
Continuations (1)
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Number |
Date |
Country |
Parent |
09342542 |
Jun 1999 |
US |
Child |
09827562 |
Apr 2001 |
US |
Continuation in Parts (3)
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Number |
Date |
Country |
Parent |
09026451 |
Feb 1998 |
US |
Child |
09342542 |
Jun 1999 |
US |
Parent |
08662728 |
Jun 1996 |
US |
Child |
09026451 |
Feb 1998 |
US |
Parent |
08400612 |
Mar 1995 |
US |
Child |
08662728 |
Jun 1996 |
US |