Claims
- 1. A long life double layer capacitor comprising:
a case; a first terminal; an electrically insulating hermetic seal interposed between the first terminal and the case; a first current collector foil electrically coupled to an interior portion of the first terminal; a first electrode, wherein the first electrode comprises carbon, the first electrode being juxtaposed against one side of the first current collector foil; a porous separator juxtaposed against another side of the first electrode; a second electrode, wherein the second electrode comprises carbon, one side of the second electrode being juxtaposed against the porous separator, wherein the porous separator is interposed between the first electrode and the second electrode; a second current collector foil, the second current collector foil being juxtaposed against another side of the second electrode; a second terminal electrically coupled to the second current collector foil; and an electrolyte solution saturating the first electrode and the second electrode, wherein the electrolyte solution is substantially contained by the case and the electrically insulating hermetic seal, and wherein influx of impurities into the electrolyte solution is substantially inhibited by the case and the electrically insulating hermetic seal.
- 2. The long life double layer capacitor of claim 1 wherein said electrically insulating hermetic seal comprises glass.
- 3. The long life double layer capacitor of claim 2 wherein said first terminal comprises molybdenum.
- 4. The long life double layer capacitor of claim 2 wherein said first terminal comprises platinum coated molybdenum.
- 5. The long life double layer capacitor of claim 2 wherein said case comprises:
a header plate, wherein the electrically insulating hermetic seal is interposed between the first terminal and the header plate; and a can, wherein the header plate is welded to the can.
- 6. The long life double layer capacitor of claim 2 wherein said electrically insulating hermetic seal comprises one or more of the group consisting of silica, boron oxide, alumina, potassium oxide, sodium oxide, and lithium oxide.
- 7. The long life double layer capacitor of claim 1 wherein said case comprises a conductive case.
- 8. The long life double layer capacitor of claim 7 wherein said conductive case comprises stainless steel.
- 9. The long life double layer capacitor of claim 1 wherein said porous separator can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 10. The long life double layer capacitor of claim 9 wherein said porous separator material comprises polytetrafluoroethylene (PTFE).
- 11. The long life double layer capacitor of claim 1 wherein said case can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 12. The long life double layer capacitor of claim 1 wherein said electrolyte solution comprises a selected solvent and a selected salt.
- 13. The long life double layer capacitor of claim 12 wherein said selected solvent comprises acetonitrile or propylene carbonate.
- 14. The long life double layer capacitor of claim 12 wherein said selected salt comprises tetraethylammonium tetraflouraborate or triethylmethylammonium tetraflouraborate.
- 15. The long life double layer capacitor of claim 1 wherein said electrically insulating hermetic seal can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 16. The long life double layer capacitor of claim 1 further comprising one or more crimps formed in said case for exerting a modest, constant pressure on an electrode assembly contained within said case.
- 17. A long life double layer capacitor comprising:
a hermetically sealed case; a plurality of electrodes, each having a first side, wherein each of the plurality of electrodes comprises carbon; a plurality of current collector foils each juxtaposed against a respective one of the plurality of electrodes against said first side; a porous separator material positioned between respective ones of the plurality of electrodes; and a non-aqueous electrolyte solution saturating said plurality of electrodes, wherein a multi-electrode, single cell device is formed, and wherein influx of impurities into the non-aqueous electrolyte solution is substantially inhibited by the hermetically sealed case.
- 18. The long life double layer capacitor of claim 17 wherein said hermetically sealed case comprises a glass-to-metal seal.
- 19. The long life double layer capacitor of claim 18 wherein said glass-to-metal seal can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 20. The long life double layer capacitor of claim 18 wherein a first terminal is coupled to at least one of said plurality of electrodes through said glass-to-metal seal.
- 21. The long life double layer capacitor of claim 20 wherein said first terminal comprises molybdenum.
- 22. The long life double layer capacitor of claim 21 further comprising:
a second terminal wherein said second terminal is electrically coupled to said case.
- 23. The long life double layer capacitor of claim 21 wherein said first terminal further comprises platinum.
- 24. The long life double layer capacitor of claim 21 wherein said first terminal comprises a platinum coated molybdenum wire.
- 25. The long life double layer capacitor of claim 17 wherein said electrolyte solution comprises a selected solvent and a selected salt.
- 26. The long life double layer capacitor of claim 25 wherein said selected solvent comprises acetonitrile or propylene carbonate.
- 27. The long life double layer capacitor of claim 26 wherein said selected salt comprises tetraethylammonium tetraflouraborate or triethylmethylammonium tetraflouraborate.
- 28. The long life double layer capacitor of claim 17 wherein said hermetically sealed case can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 29. The long life double layer capacitor of claim 17 wherein said porous separator material can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 30. The long life double layer capacitor of claim 29 wherein said porous separator material comprises polytetrafluoroethylene (PTFE).
- 31. The long life double layer capacitor of claim 17 wherein said double layer capacitor can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 32. The long life double layer capacitor of claim 17 further comprising one or more crimps formed in said hermetically sealed case for exerting a modest, constant pressure on said plurality of electrodes, said plurality of current collector foils, and said porous separator material contained within said hermetically sealed case.
- 33. A method of making a long life double layer capacitor comprising:
juxtaposing a respective side of each of a plurality of electrodes with one of a plurality of current collector foils wherein each of the plurality of electrodes comprises carbon; interposing a porous separator between respective other sides of each of the plurality of electrodes; saturating the plurality of electrodes with an electrolyte solution; sealing hermetically the plurality of electrodes and the plurality of current collector foils within a case to substantially inhibit an influx of impurities into the electrolyte solution.
- 34. The method of claim 33 wherein said sealing comprises:
interposing a glass-to-metal seal between an opening in said case and a first terminal; and electrically coupling the first terminal to one of said plurality of current collector foils.
- 35. The method of claim 34 wherein said glass-to-metal seal can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 36. The method of claim 33 wherein said interposing comprises interposing said porous separator wherein said porous separator can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 37. The method of claim 36 wherein said porous separator comprises polytetrafluoroethylene (PTFE).
- 38. A method of making a double layer capacitor comprising:
coupling a first current collector foil to an internal portion of a first terminal; folding a first electrode over the current collector foil wherein the first electrode comprises carbon; placing a porous separator against the first electrode; juxtaposing a second electrode against the porous separator wherein the second electrode comprises carbon; coupling electrically the second electrode to a case; saturating the first electrode and the second electrode with an electrolyte solution; and sealing hermetically the case, wherein the electrolyte is substantially contained within the case, and wherein influx of impurities into the electrolyte solution is substantially impaired.
- 39. The method of claim 38 wherein said placing said porous separator comprises enveloping said first electrode with said porous separator.
- 40. The method of claim 39 wherein said juxtaposing comprises juxtaposing said second electrode over said porous separator.
- 41. The method of claim 40 wherein said coupling electrically comprises:
juxtaposing a second current collector foil over the second electrode; and contacting the second current collector foil with the case.
- 42. The method of claim 38 wherein said sealing hermetically includes:
forming a glass-to-metal seal between another portion of said first terminal and said case.
- 43. The method of claim 42 wherein said sealing hermetically further includes:
welding a header to a can, wherein the header includes the glass-to-metal seal.
- 44. The method of claim 42 further comprising:
selecting a material for said first terminal having a coefficient of thermal expansion substantially similar to a coefficient of thermal expansion of glass.
- 45. The method of claim 44 wherein said selecting comprises selecting molybdenum.
- 46. The method of claim 44 wherein said selecting comprises selecting platinum plated molybdenum.
- 47. The method of claim 44 wherein said selecting comprises selecting a plating material for said first terminal that is solderable.
- 48. The method of claim 38 further comprising selecting a material for said porous separator that can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 49. The method of claim 48 wherein selecting said material for said porous separator comprises selecting said material comprising polytetrafluoroethylene (PTFE).
- 50. The method of claim 38 further comprising selecting materials to make said double layer capacitor that can withstand exposure to temperatures of up to 250° C. for periods of up to 5 minutes.
- 51. The method of claim 38 further comprising placing a modest constant pressure on said first and second electrodes, said first and second current collector foils, and said porous separator.
- 52. The method of claim 51 wherein said placing said modest constant pressure comprises forming crimps in said case.
Parent Case Info
[0001] This application is a Continuation of Application Ser. No. 09/377,328 entitled MULTI-ELECTRODE DOUBLE LAYER CAPACITOR HAVING HERMETIC ELECTROLYTE SEAL, of Farahmandi, et al. filed Aug. 18, 1999 which is incorporated herein by reference.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09377328 |
Aug 1999 |
US |
Child |
10236793 |
Sep 2002 |
US |