Claims
- 1. An apparatus comprising:
an anode manifold fabricated from a silicon substrate having open pores or channels for delivering fuel to the anode; an anode electrode having an anode electrode material; a solid oxide electrolyte; and a cathode electrode having a cathode electrode material.
- 2. The apparatus of claim 1 further comprising:
a cathode manifold fabricated from a silicon substrate having open pores or channels for delivering oxidant to a cathode.
- 3. The apparatus of claim 1, wherein said anode and said cathode are high surface area, porous materials.
- 4. The apparatus of claim 1, wherein said open pores or channels for delivering fuel to the anode comprise a porous membrane in parallel with and formed over an open channel, pore or plurality open channels or pores formed in the silicon substrate.
- 5. The apparatus of claim 1 wherein, said anode manifold is in open communication with the anode electrode and a plurality of open pores or channels for delivering fuel from a fuel source.
- 6. The apparatus of claim 2, wherein said cathode manifold is in open communication with the cathode electrode and a plurality of open pores or channels for delivering oxidant from an oxidant source.
- 7. The apparatus of claim 2, wherein the oxidant source comprises at least one of air or oxygen.
- 8. The apparatus of claim 1, wherein the fuel source is selected from the group consisting of gaseous hydrogen, at least one hydrocarbon, at least one hydrocarbon reformate, and mixtures thereof.
- 9. The apparatus of claim 1, wherein the fuel source is a liquid hydrocarbon.
- 10. The apparatus of claim 1, wherein said open pores or channels for delivering fuel to the anode comprises a plurality of channels or pores fabricated in a silicon wafer, wherein the plurality of channels or pores are in open communication with the anode electrode.
- 11. The apparatus of claim 2, wherein said open pores or channels for delivering oxidant to the cathode comprises a plurality of channels or pores fabricated in a silicon wafer, wherein the plurality of channels or pores are in open communication with the cathode electrode.
- 12. The apparatus of claim 10, wherein said channels have diameters ranging from 0.1-10 μm.
- 13. The apparatus of claim 11, wherein said channels have diameters ranging from 0.1-10 μm.
- 14. The apparatus of claim 5, wherein said open pores or channels for delivering fuel from a fuel source comprises a plurality of channels, pores, or flow fields fabricated in a silicon wafer.
- 15. The apparatus of claim 6, wherein said open pores or channels for delivering oxidant from an oxidant source comprises a plurality of channels, pores, or flow fields fabricated in a silicon wafer.
- 16. The apparatus of claim 1, wherein a resistive heater is integrated on the silicon substrate to heat the electrolyte.
- 17. The apparatus of claim 1, wherein the anode electrode has the capability or directly reforming and/or utilizing a hydrocarbon fuel.
- 18. The apparatus of claim 1, further comprising:
a hydrocarbon fuel reforming device integrated within the silicon manifold.
- 19. The apparatus of claim 1, further comprising at least one of microvalves, micropumps, microcontroller chips and integrated heaters for flow control of the fuel.
- 20. The apparatus of claim 1, further comprising:
a replaceable fuel cartridge for fuel storage.
- 21. The apparatus of claim 2, further comprising:
at least one additional apparatus comprising:
an anode electrode support fabricated from a silicon substrate having open pores or channels for delivering fuel to the anode; an anode electrode having an anode electrode material; a solid oxide electrolyte; a cathode electrode having a cathode electrode material; and a cathode electrode support fabricated from a silicon substrate having open pores or channels for delivering oxidant to the cathode, said apparatuses arranged in a planar configuration by connecting each cathode electrode to the adjacent anode electrode.
- 22. An apparatus comprising;
an anode manifold fabricated from a silicon substrate having open channels or pores for delivering fuel to the anode; an anode electrode material; a solid oxide electrolyte; a cathode electrode material; and a cathode manifold fabricated from a silicon substrate having open channels or pores for delivering oxidant to the cathode to form a fuel cell assembly.
- 23. The apparatus of claim 22, wherein said anode and said cathode are high surface area, porous materials.
- 24. The apparatus of claim 22, wherein said open pores or channels for delivering fuel to the anode is a porous membrane in parallel with and formed over an open channel, pore or plurality of open channels or pores formed in the silicon substrate.
- 25. The apparatus of claim 22, wherein said porous membrane comprises silicon.
- 26. The apparatus of claim 22, wherein said porous membrane comprises alumina.
- 27. The apparatus of claim 22, wherein said electrolyte is (1) in parallel with said anode and said cathode and (2) contacting said anode electrode on one side and said cathode electrode on the other side.
- 28. The apparatus of claim 22, wherein the anode manifold, anode electrode, electrolyte, cathode electrode, and cathode manifold are planar layers in parallel.
- 29. The apparatus of claim 28, wherein said electrode layers and said electrolyte layers have thicknesses ranging from 0.5-50 μm.
- 30. The apparatus of claim 22 wherein, said open pores or channels for delivering fuel to the anode is in open communication with the anode electrode and a plurality of open pores or channels for delivering fuel from a fuel source.
- 31. The apparatus of claim 22, wherein the fuel source is selected from the group consisting of gaseous hydrogen, at least one hydrocarbon, at least one hydrocarbon reformate, or mixtures thereof.
- 32. The apparatus of claim 22, wherein the fuel source is a liquid hydrocarbon.
- 33. The apparatus of claim 32, wherein said open pores or channels for delivering fuel to the anode comprises a plurality of channels or pores fabricated in a silicon wafer, wherein the plurality of channels or pores are in open communication with the anode electrode and said open pores or channels for delivering oxidant to the cathode comprises a plurality of channels or pores fabricated in a silicon wafer, wherein the plurality of channels or pores are in open communication with the cathode electrode.
- 34. The apparatus of claim 32, wherein said open pores or channels for delivering fuel from a fuel source comprises a plurality of channels, pores, or flow fields fabricated in a silicon wafer and a plurality of open pores or channels for delivering oxidant from an oxidant source that comprises a plurality of channels, pores, or flow fields fabricated in a silicon wafer.
- 35. The apparatus of claim 22, wherein a resistive heater is integrated on the silicon substrate to heat the electrolyte.
- 36. The apparatus of claim 22, wherein the anode electrode has the capability of directly reforming and/or utilizing a hydrocarbon fuel.
- 37. The apparatus of claim 22, further comprising:
a hydrocarbon fuel reforming device integrated within the anode manifold.
- 38. The apparatus of claim 22, further comprising:
a replaceable fuel cartridge for fuel storage.
- 39. The apparatus of claim 22, further comprising:
at least one other fuel cell assembly comprising:
an anode manifold fabricated from a silicon substrate having open channels or pores delivering fuel to the anode; an anode electrode material; a solid oxide electrolyte; a cathode electrode material; and a cathode manifold fabricated from a silicon substrate having open channels or pores delivering oxidant to the cathode in communication with said first fuel cell assembly to form a fuel cell stack assembly.
- 40. The apparatus of claim 39, wherein said fuel cells of said fuel cell stack assembly are connected in series on a planar level.
- 41. An apparatus comprising:
at least one solid oxide fuel cell having (1) an electrolyte sandwiched between a first and a second electrode and (2) at least one manifold comprising silicon.
- 42. The apparatus recited in claim 41, wherein said apparatus comprises at least a first and a second fuel cell and said fuel cells form a fuel cell stack.
- 43. The apparatus recited in claim 42, wherein the first fuel cell is stacked on the second fuel cell.
- 44. The apparatus recited in claim 42, wherein said first and second fuel cells are connected in series electrically and said fuel cell stack comprises a planar fuel cell stack.
- 45. The apparatus recited in claim 41, wherein first electrode, said second electrode, and said electrolyte each has a thickness selected from the range 0.5 micrometers to 50 micrometers.
- 46. The apparatus recited in claim 41, further comprising a resistive heater integrated within the manifold.
- 47. The apparatus recited in claim 41, wherein said manifold defines a channel, said manifold channel having a cross-sectional dimension selected from the range 0.1 millimeters to 10 millimeters.
- 48. An apparatus comprising:
a first and a second solid oxide fuel cell, each fuel cell comprising an electrolyte sandwiched between a first and a second electrode; and a manifold defining a channel, wherein the first and second fuel cells are stacked in series electrically in a planar configuration with the manifold.
- 49. The apparatus recited in claim 48, wherein said manifold comprises silicon.
- 50. The apparatus recited in claim 48, wherein each electrolyte and each electrode has a thickness selected the range of 0.5 micrometers to 50 micrometers.
- 51. The apparatus recited in claim 48, wherein the manifold channel comprises a cross-sectional dimension selected from the range 0.1 millimeters to 10 millimeters.
- 52. The apparatus recited in claim 48, further comprising a resistive heater.
- 53. A method of forming a fuel cell assembly comprising:
coating a silicon substrate with silicon dioxide, silicon nitride, or other dielectric; depositing a first electrode onto said substrate; depositing an electrolyte layer onto said first electrode layer; depositing a second electrode layer onto said electrolyte layer; forming a channel, pore or plurality thereof through the backside of the silicon substrate such that it is in open communication with the first electrode layer to form a fuel cell assembly.
- 54. The method of claim 53, wherein said depositing of said electrode layers is accomplished by physical vapor deposition, chemical vapor deposition, solgel deposition, spin-cast deposition, or combinations thereof.
- 55. The method of claim 53, further comprising:
depositing a thin layer of electrolyte onto the top silicon surface which coats down into the channel, pore or plurality of channels or pores of said silicon substrate so as to not pinch off said channel, pore or plurality of channels or pores.
- 56. The method of claim 53, wherein said first and said second electrode layers are high surface area, porous materials.
- 57. The method of claim 53, wherein said electrolyte material comprises a solid oxide material.
RELATED APPLICATION
[0001] This application is a Continuation of application Ser. No. 09/241,159 filed Feb. 1, 1999 and claims priority thereto.
Government Interests
[0002] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09241159 |
Feb 1999 |
US |
Child |
10637914 |
Aug 2003 |
US |