Claims
- 1. A multifunctional battery for supplying power to an electrical circuit having a first terminal and a second terminal, said battery comprising:
an open cell interconnected structure comprised of a plurality of open cells, wherein said structure comprises a structural electrode, said multifunctional structure being configured to be a load bearing member and being connectable to the first terminal; at least one or a plurality of interstitial electrodes, said one or plurality of interstitial electrodes being a counter electrode to said structural electrode, said one or plurality of interstitial electrodes being at least partially received within a predetermined number of cells of said structure and being connectable to the second terminal; and a separator portion disposed between said structural electrode and said interstitial electrodes to serve as an electrical insulator between said structural electrode and interstitial electrodes.
- 2. The battery of claim 1, wherein said structural electrode and said interstitial electrodes are counter electrodes with respect to one another, wherein:
if said structural electrode is a cathode then said interstitial electrodes are an anode; or alternatively, if said structural electrode is an anode then said interstitial electrodes are a cathode.
- 3. The battery of claim 2, wherein:
said cathode comprises:
a cathode nickel layer, and a cathode active metal disposed on said cathode nickel layer; said anode comprises:
a anode nickel layer, and an anode active metal disposed on said anode nickel layer.
- 4. The battery of claim 3, wherein:
said cathode active metal comprises nickel-hydroxide; and said anode active metal comprises metal-hydride.
- 5. The battery of claim 4, wherein the metal-hydride further comprises an AB2 or AB5 alloy.
- 6. The battery of claim 5, wherein said AB2 alloy is selected from the group consisting of Ni, Cr, Mn, V, Ti, Zr, Co, and Fe.
- 7. The battery of claim 5, wherein said AB5 alloy is selected from the group consisting of Al, Sn, Mn, Co, Cu, Si, Cr, Ce, Nd, Ti, La, and Ni.
- 8. The battery of claim 1, wherein said separator comprises an electrolyte material.
- 9. The battery of claim 1, wherein said open cell interconnected network comprises a truss structure.
- 10. The battery of claim 1, wherein said open cell interconnected network comprise a plurality of truss structures stacked upon one another.
- 11. The battery of claim 1, wherein said open cell interconnected network comprises a cellular structure.
- 12. The battery of claim 1, wherein said open cell interconnected network comprise a plurality of cellular structures stacked upon one another.
- 13. The battery of claim 11, wherein said cellular structure being comprised of woven material.
- 14. The battery of claim 11, wherein said cellular structure being comprised of textile layers.
- 15. The battery of claim 14, wherein at least some of said textile layers are a structure selected from the group consisting of woven mesh, square woven mesh, braid mesh, triaxial mesh, and quasi-triaxial mesh.
- 16. The method of claim 14, wherein said textile layers are three-dimensional elements.
- 17. The battery of claim 16, wherein at least some of said three dimensional textile layers are a structure selected from the group consisting of braided, multi-ply, triaxial, multi axial, H-beam, I-beam, and honeycomb.
- 18. A multifunctional battery for supplying power to an electrical circuit having a first terminal and a second terminal, said battery comprising:
a corrugated structure comprised of at least one alternating ridge and groove or a plurality of alternating ridges and grooves, wherein said structure comprises a structural electrode, said multifunctional structure being configured to be a load bearing member and being connectable to the first terminal; at least one or a plurality of interstitial electrodes, said one or plurality of interstitial electrodes being a counter electrode to said structural electrode, said interstitial electrodes being at least partially received within a predetermined number of grooves of said structure and being connectable to the second terminal; and a separator portion disposed between said structural electrode and said interstitial electrodes to serve as an electrical insulator between said structural electrode and interstitial electrodes.
- 19. The battery of claim 18, wherein said structural electrode and said interstitial electrodes are counter electrodes with respect to one another, wherein:
if said structural electrode is a cathode then said interstitial electrodes are an anode; or alternatively, if said structural electrode is an anode then said interstitial electrodes are a cathode.
- 20. The battery of claim 19, wherein:
said cathode comprises:
a cathode nickel layer, and a cathode active metal disposed on said cathode nickel layer; said anode comprises:
a anode nickel layer, and an anode active metal disposed on said anode nickel layer.
- 21. A method of producing a multifunctional battery for supplying power to an electrical circuit having a first terminal and a second terminal, said battery comprising:
providing an open cell interconnected structure comprised of a plurality of open cells, wherein said structure comprises a structural electrode, said multifunctional structure being configured to be a load bearing member and being connectable to the first terminal; receiving at least one or a plurality of interstitial electrodes within a number of cells of said structure, said interstitial electrodes being a counter electrode to said structural electrode layer and being connectable to the second terminal; providing a separator disposed between said structural electrode and said interstitial electrodes to serve as an insulator between said structural electrode layer and said interstitial electrodes.
- 22. The method of claim 21, wherein said structural electrode and said interstitial electrodes are counter electrodes with respect to one another, wherein:
if said structural electrode is a cathode then said interstitial electrodes are an anode; or alternatively, if said structural electrode is an anode then said interstitial electrodes are a cathode.
- 23. The method of claim 22, wherein:
if said structural electrode is a cathode and said interstitial electrodes are an anode; then:
said cathode is produced by a method comprising:
depositing a cathode nickel layer on said structure; providing a cathode active metal on said cathode nickel layer; said anode is produced by a method comprising:
providing a member configured for said interstitial electrode having an anode nickel layer disposed thereon, and depositing an anode active metal on said anode nickel layer, and alternatively, if said structural electrode is an anode and said interstitial electrodes are cathodes; then said cathode is produced by a method comprising:
depositing a cathode nickel layer on a member configured for said interstitial electrode; providing a cathode active metal on said cathode nickel layer; said anode is produced by a method comprising:
providing said structure having an anode nickel layer disposed thereon, and depositing an anode active metal on said anode nickel layer.
- 24. The method of claim 23, wherein said deposition of said cathode nickel layer is applied to said structure or said member by means of a vapor deposition process.
- 25. The method of claim 24, wherein said deposition process utilizes a carrier gas stream to direct the material vapor.
- 26. The method of claim 24, wherein said deposition process is directed vapor deposition.
- 27. The method of claim 23, wherein said deposition of said cathode nickel layer is applied to said structure or said member by a process selected from the group consisting of PVD, CVD, high pressure thermal evaporation, dipping, and high pressure sputtering.
- 28. The method of claim 23, wherein said deposition of said anode active metal is applied to said anode nickel layer by means of a vapor deposition process.
- 29. The method of claim 28, wherein said deposition process utilizes a carrier gas stream to direct the material vapor.
- 30. The method of claim 28, wherein said deposition process is directed vapor deposition.
- 31. The method of claim 23, wherein said deposition of said anode active metal is applied to said anode nickel layer by a process selected from the group consisting of PVD, CVD, high pressure thermal evaporation, dipping, and high pressure sputtering.
- 32. The method of claim 23, wherein:
said cathode active metal comprises nickel-hydroxide; and said anode active metal comprises metal-hydride.
- 33. The method of claim 32, wherein the metal-hydride further comprises an AB2 or AB5 alloy.
- 34. The method of claim 33, wherein said AB2 alloy is selected from the group consisting of Ni, Cr, Mn, V, Ti, Zr, Co, and Fe.
- 35. The method of claim 33, wherein said AB5 alloy is selected from the group consisting of Al, Sn, M, Co, Cu, Si, Cr, Ce, Nd, Ti, La, and Ni.
- 36. The method of claim 21, wherein said separator comprises an electrolyte material.
- 37. The method of claim 21, wherein said open cell interconnected network comprises a truss structure.
- 38. The method of claim 31, wherein said open cell interconnected network comprise a plurality of truss structures stacked upon one another.
- 39. The method of claim 21, wherein said open cell interconnected network comprises a cellular structure.
- 40. The method of claim 39, wherein said open cell interconnected network comprise a plurality of cellular structures stacked upon one another.
- 41. The method of claim 39, wherein said cellular structure being comprised of woven material.
- 42. The method of claim 39, wherein said cellular structure being comprised of textile layers.
- 43. The method of claim 42, wherein at least some of said textile layers are a structure selected from the group consisting of woven mesh, square woven mesh, braid mesh, triaxial mesh, and qrasi-triaxial mesh.
- 44. The method of claim 42, wherein said textile layers are three-dimensional elements.
- 45. The method of claim 44, wherein at least some of said three dimensional textile layers are a structure selected from the group consisting of braided, multi-ply, triaxial, multi axial, H-beam, I-beam, and honeycomb.
- 46. A method of producing a multifunctional battery for supplying power to an electrical circuit having a first terminal and a second terminal, said battery comprising a:
providing a corrugated structure comprised of at least one alternating ridge and groove or a plurality of alternating ridges and grooves, wherein said structure comprises a structural electrode, said multifunctional structure being configured to be a load bearing member and being connectable to the first terminal; receiving at least one or a plurality of interstitial electrodes, said one or plurality of interstitial electrodes being a counter electrode to said structural electrode, said interstitial electrodes being at least partially received within a predetermined number of grooves of said structure and being connectable to the second terminal; and providing a separator portion disposed between said structural electrode and said interstitial electrodes to serve as an electrical insulator between said structural electrode and interstitial electrodes.
- 47. The method of claim 46, wherein said structural electrode and said interstitial electrodes are counter electrodes with respect to one another, wherein:
if said structural electrode is a cathode then said interstitial electrodes are an anode; or alternatively, if said structural electrode is an anode then said interstitial electrodes are a cathode.
- 48. The method of claim 47, wherein:
said cathode comprises:
a cathode nickel layer, and a cathode active metal disposed on said cathode nickel layer; said anode comprises:
a anode nickel layer, and an anode active metal disposed on said anode nickel layer.
RELATED APPLICATIONS
[0001] This application claims priority from U.S. Provisional Application Serial No. 60/224,453, filed on Aug. 10, 2000, entitled “Multifunctional Electrochemical Energy Storage Materials and Method of Producing the Same,” the entire disclosure of which is hereby incorporated by reference herein.
GOVERNMENT SUPPORT
[0002] Work described herein was supported by Federal Grant Number N00014-96-I-1028, awarded by the Office of Naval Research. The United States Government possesses certain rights in and to this invention.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/25158 |
8/10/2001 |
WO |
|