Claims
- 1. In a fuel cell anode structure comprising a substrate and a first carbon-based component comprising a first carbon material, the improvement comprising:
said first carbon-based component having substantially no resistance to corrosion.
- 2. The improved anode structure of claim 1 further comprising a second carbon component, said second carbon component being substantially more resistant to corrosion than said first carbon-based component.
- 3. The improved anode structure of claim 1 wherein said substrate is a gas diffusion layer.
- 4. The improved anode structure of claim 3 wherein said first carbon-based component is disposed on said gas diffusion layer.
- 5. The improved anode structure of claim 3 wherein said first carbon-based component is disposed within said gas diffusion layer.
- 6. The improved anode structure of claim 3 further comprising a second carbon component, said second carbon component being substantially more resistant to corrosion than said first carbon-based component.
- 7. The improved anode structure of claim 6 wherein said first carbon-based component and said second carbon component are mixed and disposed on said gas diffusion layer.
- 8. The improved anode structure of claim 6 wherein said first carbon-based component and said second carbon component are mixed and disposed within said gas diffusion layer.
- 9. The improved anode structure of claim 6 wherein said first carbon-based component and said second carbon component are disposed in separate layers on said gas diffusion layer.
- 10. The improved anode structure of claim 6 wherein said first carbon-based component and said second carbon component are disposed in separate layers within said gas diffusion layer.
- 11. The improved anode structure of claim 1 wherein said substrate is a solid polymer electrolyte.
- 12. The improved anode structure of claim 11 wherein said first carbon-based component is disposed on said solid polymer electrolyte.
- 13. The improved anode structure of claim 11 wherein said first carbon-based component is disposed within said solid polymer electrolyte.
- 14. The improved anode structure of claim 11 further comprising a second carbon component, said second carbon component being substantially more resistant to corrosion than said first carbon-based component.
- 15. The improved anode structure of claim 11 wherein said first carbon-based component and said second carbon component are mixed and disposed on said solid polymer electrolyte.
- 16. The improved anode structure of claim 11 wherein said first carbon-based component and said second carbon component are mixed and disposed within said solid polymer electrolyte.
- 17. The improved anode structure of claim 11 wherein said first carbon-based component and said second carbon component are disposed in separate layers on said solid polymer electrolyte.
- 18. The improved anode structure of claim 11 wherein said first carbon-based component and said second carbon component are disposed in separate layers within said solid polymer electrolyte.
- 19. The improved anode structure of claim 1 wherein said first carbon material has a BET surface area of at least 350 m2g−1.
- 20. The improved anode structure of claim 19 further comprising a second carbon component, said second carbon component being substantially more resistant to corrosion than said first carbon-based component.
- 21. The improved anode structure of claim 19 wherein said substrate is a gas diffusion layer.
- 22. The improved anode structure of claim 21 further comprising a second carbon component, said second carbon component being substantially more resistant to corrosion than said first carbon-based component.
- 23. The improved anode structure of claim 22 wherein said first carbon-based component and said second carbon component are mixed and disposed on said gas diffusion layer.
- 24. The improved anode structure of claim 22 wherein said first carbon-based component and said second carbon component are mixed and disposed within said gas diffusion layer.
- 25. The improved anode structure of claim 22 wherein said first carbon-based component and said second carbon component are disposed in separate layers on said gas diffusion layer.
- 26. The improved anode structure of claim 22 wherein said first carbon-based component and said second carbon component are disposed in separate layers within said gas diffusion layer.
- 27. The improved anode structure of claim 20 wherein said substrate is a solid polymer electrolyte.
- 28. The improved anode structure of claim 27 further comprising a second carbon component, said second carbon component being substantially more resistant to corrosion than said first carbon-based component.
- 29. The improved anode structure of claim 28 wherein said first carbon-based component and said second carbon component are mixed and disposed on said solid polymer electrolyte.
- 30. The improved anode structure of claim 28 wherein said first carbon-based component and said second carbon component are mixed and disposed within said solid polymer electrolyte.
- 31. The improved anode structure of claim 28 wherein said first carbon-based component and said second carbon component are disposed in separate layers on said solid polymer electrolyte.
- 32. The improved anode structure of claim 28 wherein said first carbon-based component and said second carbon component are disposed in separate layers within said solid polymer electrolyte.
- 33. The improved anode structure of any one of claims 2, 6-10, 14-18, 20, 22-26 and 28-32 wherein the second carbon component acts as a support for an electrocatalyst material.
- 34. The improved anode structure of any one of claims 6-10 and 22-26 wherein said second carbon component is a carbon fill for said gas diffusion layer.
- 35. A membrane electrode assembly comprising the improved anode structure of any one of claims 1-32, wherein said membrane electrode assembly is voltage reversal tolerant.
- 36. A fuel cell comprising a membrane electrode assembly comprising the improved anode structure of any one of claims 1-32.
- 37. A fuel cell comprising the improved anode structure of any one of claims 1-32.
- 38. A method of improving tolerance of a fuel cell to voltage reversal, the method comprising incorporating in said fuel cell the improved anode structure of any one of claims 1-32.
Priority Claims (1)
Number |
Date |
Country |
Kind |
PCT/GB01/00458 |
Feb 2001 |
GB |
|
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/585,696 filed Jun. 1, 2000, entitled “Fuel Cell Anode Structures For Voltage Reversal Tolerance”. The '696 application is, in turn, related to and claims priority benefits from U.S. Provisional Pat. App. Ser. No. 60/150,253 filed Aug. 23, 1999. This application is also related to and claims priority benefits from PCT/International Application No. PCT/GB01/00458 filed Feb. 6, 2001. The '696, '253 and '458 applications are each incorporated by reference herein in their entireties.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60150253 |
Aug 1999 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09585696 |
Jun 2000 |
US |
Child |
09835905 |
Apr 2001 |
US |