Claims
- 1. An electrode/electrolyte structure for a fuel cell comprising an electrolyte sheet incorporating a plurality of anode and cathode electrodes located on opposing sides of the electrolyte sheet, the anode and cathode electrodes being electrically connected in series, parallel, or a combination thereof by electrical conductors traversing via holes in the electrolyte sheet.
- 2. The electrode/electrolyte structure of claim 1, wherein each electrical conductor is a cermet of a precious/semi-precious metal and a ceramic.
- 3. The electrode/electrolyte structure of claim 1, wherein each electrical conductor includes platinum, rhodium or iridium and at least one metal selected from the group consisting of iridium, rhodium, platinum, ruthenium, palladium, gold, silver and alloys thereof.
- 4. The electrode/electrolyte structure of claim 1, wherein each electrical conductor includes a via fill material and two via pad structures, wherein said via fill material is located within and around one of the via holes in the electrolyte sheet and the two via pad structures are attached to opposing ends of the via fill material that extend from both sides of the via holes.
- 5. The electrode/electrolyte structure of claim 4, wherein the via fill materials are Pt-Au-Pd alloys and at least one of the two via pads is a Ag-Pd alloy and the via fill material extends around the via hole a predetermined distance to prevent the formation of blisters.
- 6. The electrode/electrolyte structure of claim 1, wherein each electrical conductor includes a relatively thick portion that is located over and near the via holes in the electrolyte sheet.
- 7. The electrode/electrolyte structure of claim 1, wherein each electrical conductor is made from a platinum-gold alloy which prevents formation of blisters.
- 8. The electrode/electrolyte structure of claim 1, wherein each electrical conductor has a thermal expansion coefficient similar to a thermal expansion coefficient of the electrolyte sheet to reduce stress during thermal cycling.
- 9. A fuel cell formed from an array of anode electrodes and cathode electrodes disposed on opposing sides of an electrolyte sheet, the anode and cathode electrodes being electrically connected to one another by electrical conductors traversing via holes in the electrolyte sheet.
- 10. The fuel cell of claim 9, wherein each electrical conductor is a cermet of at least 20% volume or more of a precious/semi-precious metal and at least 2% volume of a ceramic.
- 11. The fuel cell of claim 10, wherein:
said precious/semi-precious metal includes at least one metal selected from iridium, rhodium, platinum, ruthenium, palladium, gold, silver and alloys thereof; and said ceramic includes lanthanum chromite.
- 12. The fuel cell of claim 10, where said precious/semi-precious metal includes at least 0.5% volume of palladium.
- 13. The fuel cell of claim 9, wherein each electrical conductor is made from platinum, rhodium or iridium and at least one metal selected from the group consisting of iridium, rhodium, platinum, ruthenium, palladium, gold, silver and alloys thereof.
- 14. The fuel cell of claim 13, wherein said electrical conductor is platinum-gold-palladium alloy with greater than about 10% of gold and less than about 50% palladium.
- 15. The fuel cell of claim 13, wherein each electrical conductor further includes at least 0.5% volume of palladium.
- 16. The fuel cell of claim 13, wherein each electrical conductor further includes a conductive ceramic.
- 17. The fuel cell of claim 9, wherein each electrical conductor includes a via fill material and two via pad structures, wherein said via fill material is located within and around one of the via holes in the electrolyte sheet and the two via pad structures are attached to opposing ends of the via fill material that extend from both sides of the via holes.
- 18. The fuel cell of claim 17, wherein the via fill materials are Pt—Au—Pd alloys and at least one of the two via pad structures is a Ag—Pd alloy and the via fill material extends around the via hole a predetermined distance to prevent the formation of blisters.
- 19. The fuel cell of claim 17, wherein each electrical conductor further includes a barrier layer located between the via fill material and the via pad structure.
- 20. The fuel cell of claim 17, wherein each electrical conductor further includes an adherence layer located between the electrolyte sheet and the via fill material and the via pad structure.
- 21. The fuel cell of claim 20, wherein each adherence layer is a conductive ceramic or refractory cermet which helps prevent dendrite growth between an edge of the electrical conductor and an adjacent electrode.
- 22. The fuel cell of claim 9, wherein each electrical conductor includes a relatively thick portion that is located over and near the via holes in the electrolyte sheet.
- 23. The fuel cell of claim 22, wherein said thick portion has a thickness greater than 5 microns but less than 100 microns.
- 24. The fuel cell of claim 22, wherein said thick portion extends more than 5 microns but less than 750 microns from an edge of one of the via holes in the electrolyte sheet.
- 25. The fuel cell of claim 22, wherein each electrical conductor has smooth edges and a rounded geometry in a plane and perpendicular to the plane of the electrolyte sheet.
- 26. A fuel cell comprising:
a plurality of anode electrodes and cathode electrodes; an electrolyte sheet interposed between the anode electrodes and cathode electrodes, the anode electrodes being bonded to a first side of the electrolyte sheet and the cathode electrodes being bonded to a second side of the electrolyte sheet; the anode and cathode electrodes being in opposing positions across the electrolyte sheet to form a plurality of electrochemical cells; and the plurality of electrochemical cells being connected in electrical series, parallel, or a combination of series and parallel by electrical conductors traversing a plurality of via holes formed in the electrolyte sheet and contacting the anode and cathode electrodes.
- 27. The fuel cell of claim 26, wherein each electrical conductor is a cermet of a precious/semi-precious metal and a ceramic.
- 28. The fuel cell of claim 26, wherein each electrical conductor is made from platinum, rhodium or iridium and at least one metal selected from the group consisting of iridium, rhodium, platinum, ruthenium, palladium, gold, silver and alloys thereof.
- 29. The fuel cell of claim 26, wherein each electrical conductor includes a via fill material and two via pad structures, wherein said via fill material is located within and around one of the via holes in the electrolyte sheet and the two via pad structures are attached to opposing ends of the via fill material that extend from both sides of the via holes.
- 30. The fuel cell of claim 29, wherein the via fill materials are Pt—Au—Pd alloys and at least one of the two via pad structures is a Ag—Pd alloy and the via fill material extends around the via hole a predetermined distance to prevent the formation of blisters.
- 31. The fuel cell of claim 26, wherein each electrical conductor includes a relatively thick portion that is located over and near the via holes in the electrolyte sheet.
- 32. A method of manufacturing a fuel cell, said method comprising the steps of:
providing an electrolyte sheet having a plurality of via holes therethrough; forming a plurality of cathode electrodes on a first side of the electrolyte sheet and a plurality of anode electrodes in opposition to the cathode electrodes on a second side of the electrolyte sheet; and forming a plurality of electrical conductors traversing the via holes from the first side to the second side of the electrolyte sheet, each electrical conductor being in contact with at least one cathode electrode on the first side of the electrolyte sheet and at least one anode electrode on the second side of the electrolyte sheet.
- 33. The method of claim 32, wherein each electrical conductor is a cermet of a precious/semi-precious metal and a ceramic.
- 34. The method of claim 32, wherein each electrical conductor is made from platinum, rhodium or iridium and at least one metal selected from the group consisting of iridium, rhodium, platinum, ruthenium, palladium, gold, silver and alloys thereof.
- 35. The method of claim 32, wherein each electrical conductor includes a via fill material and two via pad structures, wherein said via fill material is located within one of the via holes in the electrolyte sheet and the two via pad structures are attached to opposing ends of the via fill material that extend from both sides of the via holes.
- 36. The method of claim 35, wherein the via fill materials are Pt—Au—Pd alloys and at least one of the two via pad structures is an Ag—Pd alloy and the via fill material extends around the via hole a predetermined distance to prevent the formation of blisters.
- 37. The method of claim 32, wherein each electrical conductor includes a relatively thick portion that is located over and near the via holes in the electrolyte sheet.
- 38. A fuel cell formed from at least one anode electrode and at least one cathode electrode disposed on opposing sides of an electrolyte sheet, at least one anode and cathode electrode being electrically connected to one another by at least one electrical conductor traversing at least one via hole in an interconnect separator plate, wherein said at least one electrical conductor is made from a platinum-gold-palladium alloy.
- 39. The fuel cell of claim 38, wherein said fuel cell is a planar fuel cell.
- 40. A fuel cell formed from at least one anode electrode and at least one cathode electrode disposed on opposing sides of an electrolyte sheet, the at least one anode and cathode electrodes being electrically connected to one another by at least one electrical conductor traversing at least one via hole in an interconnect separator plate, wherein said at least one electrical conductor is made from two or more precious/semi-precious elements selected from the group consisting of iridium, rhodium, platinum, ruthenium, palladium or gold.
- 41. The fuel cell of claim 40, wherein said fuel cell is a planar fuel cell.
- 42. A fuel cell formed from at least one anode electrode and at least one cathode electrode disposed on opposing sides of an electrolyte sheet, the at least one anode and cathode electrodes being electrically connected to one another by at least one electrical conductor traversing at least one via hole in an interconnect separator plate, wherein said at least one electrical conductor is made from three or more precious/semi-precious elements selected from the group consisting of iridium, rhodium, platinum, ruthenium, palladium, gold or silver.
- 43. The fuel cell of claim 42, wherein said fuel cell is a planar fuel cell.
CLAIMING BENEFIT OF PRIOR FILED APPLICATIONS
[0001] This application is a Continuation-In-Part of U.S. patent application Ser. No. 09/858,124 filed on May 15, 2001, now pending, which claimed the benefit of U.S. provisional application Serial No. 60/205,273 filed on May 18, 2000 both of which are incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60205273 |
May 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09858124 |
May 2001 |
US |
Child |
10422356 |
Apr 2003 |
US |