Claims
- 1. A method for manufacturing a coated substrate by a process of vapor deposition and concurrent glow-discharge plasma treatment at substantially atmospheric pressure, comprising the following steps:
providing a first electrode and a second electrode separated by a dielectric material and facing a process space:
applying a voltage across the electrodes; mixing a vaporized precursor with a plasma gas; diffusing the vaporized precursor and plasma gas into the process space at substantially atmospheric pressure; and depositing the vaporized precursor over said substrate.
- 2. The method of claim 1, wherein said precursor includes a component selected from the group consisting of siloxanes, silanes, silazanes, fluoro-silicones, fluoro-carbons, chloro-silicones, chloro-carbons, organo-metallic complexes of silver, copper, boron or aluminum, or a mixture thereof.
- 3. The method of claim 1, wherein said substrate includes a component selected from the group consisting of a plastic material, a metal, a woven fiber fabric, a nonwoven fiber, glass, or a mixture thereof.
- 4. The method of claim 2, wherein said substrate includes a component selected from the group consisting of a plastic material, a metal, a woven fiber fabric, a nonwoven fiber, glass, or a mixture thereof.
- 5. A coated substrate manufactured according to the process of claim 1 to provide a barrier, wherein said precursor includes a siloxane and said substrate includes a plastic material.
- 6. A coated substrate manufactured according to the process of claim 1 to provide a barrier structure, wherein said precursor includes a trialkyl silanes and said substrate includes a plastic material.
- 7. A coated substrate manufactured according to the process of claim 1 to provide a biocide structure, wherein said precursor includes a chlorocarbon and said substrate includes a fiber material.
- 8. A coated substrate manufactured according to the process of claim 1 to provide a biocide structure, wherein said precursor includes a copper complex and said substrate includes a fiber material.
- 9. A coated substrate manufactured according to the process of claim 1 to provide a biocide structure, wherein said precursor includes a chlorocarbon and said substrate includes a plastic material.
- 10. A coated substrate manufactured according to the process of claim 1 to provide a biocide structure, wherein said precursor includes a copper complex and said substrate includes a plastic material.
- 11. A coated substrate manufactured according to the process of claim 1 to provide a hydrophobic/oleophobic structure, wherein said precursor is selected from the group consisting of fluorocarbons, fluoro-silicones, trialkylsilane, or mixtures thereof.
- 12. A coated substrate manufactured according to the process of claim 1 to provide a hydrophilic structure, wherein said precursor is selected from the group consisting of siloxanes, alyphatic hydrocarbons, or mixtures thereof.
- 13. A coated substrate manufactured according to the process of claim 1 to provide an electrostatic-dissipative/conductive structure, wherein said precursor is an organo-metal complex.
- 14. A method for manufacturing a coated substrate by a process of vapor deposition and concurrent glow-discharge plasma treatment at substantially atmospheric pressure, comprising the following steps:
providing a first electrode and a second electrode separated by a dielectric material and facing a process space:
applying a voltage across the electrodes; diffusing a plasma gas into the process space at substantially atmospheric pressure; mixing a vapor precursor with the plasma gas in the process space; and depositing the vaporized coating material over said substrate.
- 15. The method of claim 14, wherein said precursor includes a component selected from the group consisting of siloxanes, silanes, silazanes, fluoro-silicones, fluoro-carbons, chloro-silicones, chloro-carbons, organo-metallic complexes of silver, copper, boron or aluminum, or a mixture thereof.
- 16. The method of claim 14, wherein said substrate includes a component selected from the group consisting of a plastic material, a metal, a woven fiber fabric, a nonwoven fiber fabric, glass, or a mixture thereof.
- 17. The method of claim 15, wherein said substrate includes a component selected from the group consisting of a plastic material, a metal, a woven fiber fabric, a nonwoven fiber fabric, glass, or a mixture thereof.
- 18. A coated substrate manufactured according to the process of claim 14 to provide a barrier, wherein said precursor includes a siloxane and said substrate includes a plastic material.
- 19. A coated substrate manufactured according to the process of claim 14 to provide a barrier structure, wherein said precursor includes a trialkyl silanes and said substrate includes a plastic material.
- 20. A coated substrate manufactured according to the process of claim 14 to provide a biocide structure, wherein said precursor includes a chlorocarbon and said substrate includes a fiber material.
- 21. A coated substrate manufactured according to the process of claim 14 to provide a biocide structure, wherein said precursor includes a copper complex and said substrate includes a fiber material.
- 22. A coated substrate manufactured according to the process of claim 14 to provide a biocide structure, wherein said precursor includes a chlorocarbon and said substrate includes a plastic material.
- 23. A coated substrate manufactured according to the process of claim 14 to provide a biocide structure, wherein said precursor includes a copper complex and said substrate includes a plastic material.
- 24. A coated substrate manufactured according to the process of claim 14 to provide a hydrophobic/oleophobic structure, wherein said precursor is selected from the group consisting of fluorocarbons, fluoro-silicones, trialkylsilane, or mixtures thereof.
- 25. A coated substrate manufactured according to the process of claim 14 to provide a hydrophilic structure, wherein said precursor is selected from the group consisting of siloxanes, alyphatic hydrocarbons, or mixtures thereof.
- 26. A coated substrate manufactured according to the process of claim 14 to provide an electrostatic-dissipative/conductive structure, wherein said precursor is an organo-metal complex.
- 27. A substrate coated with a precursor applied by vapor deposition in a plasma field at atmospheric pressure.
- 28. A barrier coating deposited by vapor deposition in a plasma field at atmospheric pressure.
- 29. A biocide coating deposited by vapor deposition in a plasma field at atmospheric pressure.
- 30. An electrostatic dissipative/conductive coating deposited by vapor deposition in a plasma field at atmospheric pressure.
- 31. A hydrophobic/oleophobic coating deposited by vapor deposition in a plasma field at atmospheric pressure.
- 32. A hydrophilic coating deposited by vapor deposition in a plasma field at atmospheric pressure.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. Ser. No. 09/660,003, filed on Sep. 12, 2000, which is a continuation-in-part of Ser. No. 09/241,882, filed on Feb. 1, 1999, issued as U.S. Pat. No. 6,118,218.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09660003 |
Sep 2000 |
US |
Child |
10228358 |
Aug 2002 |
US |
Parent |
09241882 |
Feb 1999 |
US |
Child |
09660003 |
Sep 2000 |
US |