Claims
- 1. A polymer electrolyte fuel cell comprising:
a stack of unit cells, each of the unit cells comprising a hydrogen-ion conductive polymer electrolyte membrane, and an anode and a cathode sandwiching said polymer electrolyte membrane, a plurality of separators respectively provided between each two adjacent unit cells and including a gas flow channel for supplying said fuel gas to the anode, and a gas flow channel for supplying said oxidant gas to the cathode; a pair of current collector plates that sandwiches said stack of unit cells; and a pair of end plates that clamps said stack of unit cells and said current collector plates under pressure, wherein each of said current collector plates comprises: a conductive carbon material, and a terminal section that is operable to connect a power output coupling and is located closer to at least one of an inlet-side manifold for said fuel gas and an inlet side manifold for said oxidant gas than to an outlet side manifold for said fuel gas and an outlet side manifold for said oxidant gas.
- 2. The polymer electrolyte fuel cell in accordance with claim 1, wherein said terminal section includes a coating layer having a higher electrical conductivity than that of said conductive carbon material.
- 3. The polymer electrolyte fuel cell in accordance with claim 2, wherein said coating layer extends approximately to at least one of said inlet side manifold for said fuel gas and said inlet side manifold for said oxidant gas.
- 4. The polymer electrolyte fuel cell in accordance with claim 2, wherein said coating layer comprises a metal plate.
- 5. The polymer electrolyte fuel cell in accordance with claim 4, wherein said metal plate of at least one of said current collector plates extends to overlap with a said separator that is adjacent to said at least one of said current collector plates.
- 6. The polymer electrolyte fuel cell in accordance with claim 2, wherein said coating layer comprises a metal film.
- 7. The polymer electrolyte fuel cell in accordance with claim 2, wherein said coating layer has a thickness in the range of about 1-100 μm.
- 8. The polymer electrolyte fuel cell of claim 1, wherein said conductive carbon material is graphite.
- 9. The polymer electrolyte fuel cell in accordance with claim 1, wherein said current collector plates comprise a molded plate of a composite of said conductive carbon material and a binder.
- 10. The polymer electrolyte fuel cell in accordance with claim 9, wherein said molded plate includes therein a metal plate as a core member, and said metal plate, even at an aperture of the inlet-side manifold of said molded plate, has no portion exposed to the outside of said molded plate.
- 11. The polymer electrolyte fuel cell of claim 9, wherein the binder comprises a thermoplastic resin including at least one of polyphenylene sulfide, polypropylene, epoxy resin, and phenol resin.
- 12. The polymer electrolyte fuel cell in accordance with claim 1, wherein said current collector plates have lower electrical resistivity in the planar direction than in the thickness direction.
- 13. The polymer electrolyte fuel cell in accordance with claim 12, wherein said current collector plates have a ratio of electrical resistivity in the plane direction to electrical resistivity in the thickness direction of about 0.01 to about 0.1.
- 14. The polymer electrolyte fuel cell of claim 1, wherein said current collector plates have an electrical resistivity of approximately 5 mΩ·cm or less in a planar direction.
- 15. The polymer electrolyte fuel cell of claim 1, wherein said current collector plates have an electrical resistivity of approximately 1 mΩ·cm or less in a planar direction.
- 16. The polymer electrolyte fuel cell in accordance with claim 4, wherein said metal plate is bonded to the current collector plates with a conductive adhesive.
- 17. The polymer electrolyte fuel cell in accordance with claim 10, wherein said metal plate is coated with a conductive layer comprising at least one of noble metal, conductive inorganic oxide, conductive inorganic nitride, and conductive inorganic carbide.
- 18. The polymer electrolyte fuel cell in accordance with claim 1, wherein at least one of said current collector plates has a gas flow channel on one of an anode-facing side and a cathode-facing side and functions as an anode-side or cathode-side separator.
- 19. The polymer electrolyte fuel cell in accordance with claim 1, wherein said current collector plates are of a one-piece structure with respective ones of said end plates.
- 20. A method of molding a current collector plate for a fuel cell stack, said method comprising:
evenly charging a molding compound into a mold, said molding compound comprising a conductive carbon material; compressing said molding compound in said mold at a first temperature and a first pressure; providing a metal plate with a conductive layer on a surface thereof; opening the mold and inserting said metal plate into the mold; charging a further amount of the molding compound into the mold to surround said metal plate with said molding compound; and applying a second pressure and a second temperature to the mold to from a current collector plate having said metal plate embedded in said molding material, said second pressure being higher than said first pressure and said second temperature being higher than said first temperature.
- 21. The method of claim 20, wherein said metal plate is made of brass and said conductive layer is platinum.
- 22. The method of claim 20, wherein said metal plate is made of Ti and said conductive layer is TiN.
- 23. The method of claim 20, wherein said metal plate is made of Al and said conductive layer is Ti—Al—N.
- 24. The method of claim 20, wherein said metal plate is made of stainless steel SUS 316 and said conductive layer is Pb.
- 25. The method of claim 20, wherein said metal plate is made of stainless steel SUS 316 and said conductive layer is In-doped tin oxide.
- 26. The method of claim 20, wherein said step of providing said metal plate with a conductive layer on a surface thereof comprises:
decomposing a gas on a metal substrate, said gas being a mixture of silane, methane (CH4) and diborane (PH3) in a ratio wherein P/(Si+C)=10 atomic % with the mixture having a pressure of 10 Torr conductive layer is an n-type doped SiC layer and with the substrate at a predetermined temperature; and depositing a gold electrode on the SiC layer.
- 27. The method of claim 26, wherein said predetermined temperature is about 300° C.
- 28. The method of claim 27, wherein said a time of said decomposing step is controlled to provide a thickness of said n-type doped SiC layer of 1000 Å.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 2002-114552 |
Apr 2002 |
JP |
|
Parent Case Info
[0001] This application is a continuation-in-part of PCT International Application No. PCT/JP03/04723 filed Apr. 14, 2003.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
PCT/JP03/04723 |
Apr 2003 |
US |
| Child |
10778602 |
Feb 2004 |
US |