Claims
- 1. A fuel cell comprising in combination:
a substrate having a substrate top surface, a substrate bottom surface, and an opening, said opening extending upward from said substrate bottom surface; and a MEMS structure at least partially aligned with said opening, said MEMS structure including a first portion disposed on said substrate top surface and a second portion extending over only part of said opening, said MEMS structure comprising an anode, a cathode, and an electrolyte in contact with said anode and cathode.
- 2. The fuel cell of claim 1, wherein at least a portion of said opening extends through said substrate.
- 3. The fuel cell of claim 1, wherein said second portion of said MEMS structure forms a cantilever supported by said first portion of said MEMS structure.
- 4. The fuel cell of claim 2, wherein said cantilever comprises a salient portion of said substrate.
- 5. The fuel cell of claim 4, wherein said salient portion of said substrate supports the anode, cathode, and electrolyte of the fuel cell.
- 6. The fuel cell of claim 4, wherein said salient portion of said substrate includes openings extending through said salient portion.
- 7. The fuel cell of claim 4, wherein said salient portion of said substrate is porous.
- 8. The fuel cell of claim 1, wherein at least one element selected from said anode, cathode, and electrolyte extends over both said first and second portions of said MEMS structure.
- 9. The fuel cell of claim 8, wherein said at least one element extending over both of said first and second portions of said MEMS structure supports the remaining elements of said electrolyte, anode, and cathode.
- 10. The fuel cell of claim 8, wherein said at least one element extending over both of said first and second portions of said MEMS structure is the anode.
- 11. The fuel cell of claim 8, wherein said at least one element extending over both of said first and second portions of said MEMS structure is the cathode.
- 12. The fuel cell of claim 8, wherein said at least one element extending over both of said first and second portions of said MEMS structure is the electrolyte.
- 13. The fuel cell of claim 8, wherein said at least one element extending over both of said first and second portions of said MEMS structure comprises at least two elements selected from said, anode, cathode, and electrolyte.
- 14. The fuel cell of claim 1, wherein said MEMS structure comprises a stack of layers, said layers including said electrolyte, anode, and cathode.
- 15. The fuel cell of claim 14, wherein said stack of layers comprises a stack of thin films.
- 16. The fuel cell of claim 1, wherein said MEMS structure comprises a cathode layer supported by an electrolyte layer, said electrolyte layer being supported in turn by an anode layer.
- 17. The fuel cell of claim 1, wherein said MEMS structure comprises an anode layer supported by an electrolyte layer, said electrolyte layer being supported in turn by a cathode layer.
- 18. The fuel cell of claim 1, wherein both said cathode and anode are supported by a solid electrolyte layer.
- 19. The fuel cell of claim 18, wherein said cathode comprises a patterned thin film in contact with said solid electrolyte layer.
- 20. The fuel cell of claim 18, wherein said anode comprises a patterned thin film in contact with said solid electrolyte layer.
- 21. The fuel cell of claim 18, wherein both said anode and cathode comprise patterned thin films in contact with said solid electrolyte layer.
- 22. The fuel cell of claim 18, wherein each of said anode and said cathode comprises a thin film in contact with opposite sides of said solid electrolyte layer.
- 23. The fuel cell of claim 18, wherein each of said anode and said cathode comprises a patterned thin film in contact with the same side of said solid electrolyte layer, said anode and cathode being spaced apart from each other.
- 24. The fuel cell of claim 23, wherein said anode and said cathode are suitably patterned to interleave with each other.
- 25. The fuel cell of claim 1, further comprising a mechanical stress-relief feature, said stress-relief feature comprising at least a second opening contiguous with both of said first and second portions of said MEMS structure.
- 26. The fuel cell of claim 25, wherein said at least second opening of said stress-relief feature extends downward from said substrate top surface.
- 27. The fuel cell of claim 25, wherein said at least second opening of said stress-relief feature extends through said substrate.
- 28. The fuel cell of claim 25, wherein said at least second opening of stress-relief feature comprises an opening elongated in a direction parallel to said substrate top surface.
- 29. The fuel cell of claim 25, wherein said stress-relief feature comprises a series of openings extending through said substrate, each opening of said series of openings being disposed contiguous with said second portion of said MEMS structure.
- 30. An electronic device comprising the fuel cell of claim 1.
- 31. A fuel cell comprising in combination:
a substrate having a substrate top surface, a substrate bottom surface, and an opening, said opening extending upward from said substrate bottom surface; and a MEMS structure at least partially aligned with said opening, said MEMS structure including a first portion disposed on said substrate top surface and a second portion extending cantilevered over only part of said opening, said second portion of said MEMS structure comprising a patterned thin film anode, a patterned thin film cathode, and a solid electrolyte in contact with said patterned thin film anode cathode.
- 32. The fuel cell of claim 31, wherein said substrate comprises a material suitably stable at a desired temperature of operation, said material being selected from the list consisting of semiconductors, metals, oxides, ceramics, plastics, and solid polymers.
- 33. The fuel cell of claim 31, wherein said substrate comprises silicon.
- 34. An electrical energy source comprising in combination:
a MEMS structure, said MEMS structure comprising means for producing electrical current in an electrolyte for delivering said electrical energy; means for supporting said MEMS structure; and means for cantilevering said MEMS structure from said means for supporting said MEMS structure.
- 35. The electrical energy source of claim 34, wherein said electrical-current-producing means includes an anode, a cathode, and said electrolyte disposed in contact with said anode and cathode.
- 36. The electrical energy source of claim 34, further comprising means for conducting heat away from said electrical-current-producing means.
- 37. A fuel cell comprising in combination:
a substrate having a substrate top surface, a substrate bottom surface, and an opening, said opening extending upward from said substrate bottom surface; and a MEMS structure at least partially aligned with said opening, said MEMS structure including a first portion disposed adjacent to said substrate top surface and a second portion extending over only part of said opening, said MEMS structure comprising an anode, a cathode, and an electrolyte in contact with said anode and cathode, said first portion of said MEMS structure having thermal contact with said substrate for conducting away heat generated in said second portion of said MEMS structure and said first portion of said MEMS structure having one or more openings for relief of mechanical stress, said second portion of said MEMS structure having an edge free to move in response to said generated heat to reduce said mechanical stress.
- 38. An electronic device comprising the fuel cell of claim 37.
- 39. A method for fabricating a MEMS fuel cell, said method comprising the steps of:
a) providing a substrate; b) forming a fuel-cell structure on said substrate by depositing in suitable order and optionally patterning an anode, an electrolyte, and a cathode; c) removing a portion of said substrate under said fuel-cell structure to leave said fuel-cell structure supported in membrane form; and d) forming at least a first opening adjacent to said fuel-cell structure while leaving said fuel-cell structure supported by only one edge, whereby said fuel-cell structure is cantilevered.
- 40. A fuel cell made by the method of claim 39.
- 41. An electronic device comprising the fuel cell of claim 40.
- 42. The method of claim 39, wherein said fuel-cell-structure-forming step (b) is performed by performing the substeps of:
i) depositing and optionally patterning an electrolyte upon said substrate; ii) depositing and patterning an anode upon at least said electrolyte; iii) optionally depositing an electrolyte over said anode; and iv) depositing and patterning a cathode upon at least said electrolyte, said cathode being spaced from said anode.
- 43. The method of claim 39, wherein said fuel cell-structure-forming step (b) is performed by performing the substeps of:
i) depositing and patterning an anode upon said substrate; ii) depositing and patterning a cathode upon said substrate; iii) depositing and patterning an electrolyte over said cathode and anode; and iv) depositing and patterning an anode upon at least said electrolyte v) depositing and patterning a cathode upon at least said electrolyte, said cathode being spaced from said anode.
- 44. The method of claim 39, wherein said fuel-cell-structure-forming step (b) is performed by performing the substeps of:
i) depositing and optionally patterning an electrolyte upon said substrate; ii) depositing and patterning a cathode upon at least said electrolyte; iii) optionally depositing an electrolyte over said cathode; and iv) depositing and patterning an anode upon at least said electrolyte, said anode being spaced from said cathode.
- 45. The method of claim 39, wherein said fuel-cell-structure-forming step (b) is performed by performing the substeps of:
i) depositing and patterning an anode upon said substrate; ii) depositing and optionally patterning an electrolyte upon at least said anode; iii) depositing and patterning a cathode upon at least said electrolyte, said cathode being spaced from said anode.
- 46. The method of claim 39, wherein said fuel-cell-structure-forming step (b) is performed by performing the substeps of:
i) depositing and patterning a cathode upon said substrate; ii) depositing and optionally patterning an electrolyte upon at least said cathode; iii) depositing and patterning an anode upon at least said electrolyte, said anode being spaced from said cathode.
- 47. The method of claim 39, further comprising the step of:
e) forming at least one second opening adjacent to said one edge to provide mechanical stress relief.
- 48. A fuel cell made by the method of claim 47.
- 49. An electronic device comprising the fuel cell of claim 48.
- 50. The method of claim 47, wherein said at least one second opening is formed to extend through said substrate.
- 51. The method of claim 47, wherein said second-opening-step is performed by forming a plurality of elongated openings.
- 52. The method of claim 51, wherein said plurality of elongated openings are formed to extend through said substrate.
- 53. A method for fabricating a MEMS fuel cell, said method comprising the steps of:
a) providing a substrate; b) forming a fuel-cell structure on said substrate by performing the substeps of:
i) depositing and optionally patterning an electrolyte upon said substrate; ii) depositing and patterning an anode upon at least said electrolyte; iii) optionally depositing and optionally patterning an electrolyte over said anode; and v) depositing and patterning a cathode upon at least said electrolyte, said cathode being spaced from said anode; c) removing a portion of said substrate under said fuel-cell structure; and d) forming at least a first opening adjacent to said fuel-cell structure while leaving said fuel-cell structure supported by only one edge, whereby said fuel-cell structure is cantilevered.
- 54. The method of claim 53, further comprising the step of:
providing electrical connections.
- 55. The method of claim 54, wherein the step of providing electrical connections is performed by depositing terminal electrodes in electrical contact with said anode and cathode.
- 56. A fuel cell made by the method of claim 55.
- 57. An electronic device comprising the fuel cell of claim 56.
- 58. A fuel cell assembly comprising a plurality of the fuel-cell structures of claim 56, arranged in an array.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of co-pending and commonly assigned application Ser. No. 10/219,507, filed Aug. 14, 2002, the entire disclosure of which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10219507 |
Aug 2002 |
US |
Child |
10269771 |
Oct 2002 |
US |