Claims
- 1. An electrolytic capacitor comprising at least a housing with an insulator lid or a protective coating layer, which encloses the following components,
- a pair of electrodes, i.e., an anode with a dielectric substance layer of a metal oxide formed thereon and an electrically conducting cathode,
- a pair of lead conductors each of which is connected to said anode or cathode, and
- an electrolyte layer which is disposed between said dielectric substance layer formed on said anode and said cathode, and comprises:
- at least one ammonium salt, and
- at least one polyether polyol having a skeletal structure represented by the formula: ##STR6## where, each of Rs' independently represents a hydrogen atom, an optionally substituted isocyanate residue or acrylic residue which may be the same as or different from one another; m.sub.1, m.sub.2, m.sub.3, n.sub.1, n.sub.2 and n.sub.3, each represents a positive integer, and the ends of the isocyanate residues or acrylic residues are 3-dimensionally linked.
- 2. The electrolytic capacitor in accordance with claim 1, wherein the polyether moiety of said polyether polyol is a random copolymer composed of oxyethylene and oxypropylene.
- 3. The electrolytic capacitor in accordance with claim 1 or 2 wherein; said electrolyte further comprises electric conductive carbon fine powder.
- 4. The electrolytic capacitor in accordance with claim 1, wherein said polyether polyol has isocyanate residues whose ends are 3-dimensionally linked.
- 5. The electrolytic capacitor in accordance with claim 4, wherein said electrolyte further comprises; at least one plasticizer selected from the group consisting of propylene carbonate, ethlene carbonate, sulfolane, and a polyalkylene glycol dimethyl ether.
- 6. The electrolytic capacitor in accordance with claim 1, wherein; said polyether polyol has acrylic residues whose ends are linked together by an irradiation with an ultraviolet beam or with an electron beam.
- 7. The electrolytic capacitor in accordance with claim 6, wherein said electrolyte further comprises; at least one plasticizer selected from the group consisting of propylene carbonate, ethlene carbonate, sulfolane, diethylene glycol, triethylene glycol, tetraethylene glycol, polyethylene glycol and a polyalkylene glycol dimethyl ether.
- 8. The electrolytic capacitor in accordance with claim 1, wherein said ammonium salt is at least one selected from the group consisting of ammonium adipate, ammonium azelate, ammonium benzoate, ammonium borodisalicilate, tetramethylammonium borodisalicilate, tetraethylammonium paratoluenesulfonate, ammonium .gamma.-resorcinate, tetramethylammonium borofluonate, tetraethylammonium borofluonate, tetramethylammonium hexafluorophospate, and tetraethylammonium hexafluorophosphate, or a mixture thereof.
- 9. The electrolytic capacitor in accordance with claim 5 or 7 wherein a ratio by weight of said plasticizer to polyether polyol is larger than 0 and smaller than 5.
- 10. The electrolytic capacitor in accordance with claim 1, wherein a ratio in number of the oxygen atoms constituting said polyether polyol included in said electrolyte to molecules of said ammonium salt included in said electrolyte is larger than 20 and smaller than 50.
- 11. The electrolytic capacitor in accordance with claim 3, wherein a ratio by weight of said electric conductive carbon fine powder included in the electrolyte to total electrolyte is not smaller than 0.1 and not larger than 0.5.
- 12. A method for the production of the electrolytic capacitor as claimed in claim 1 or 2, which comprises: dissolving electrolytic substance in an organic solvent to form an electrolyte solution for the polymer electrolyte,
- extending said electrolyte solution over the surface of the dielectric substance layer formed on the anode,
- assembling said anode with the cathode to form a capacitor element, and
- curing the extended electrolyte solution for the polymer electrolyte to solidify itself.
- 13. A method for the production of the electrolytic capacitor as claimed in claim 1 or 2, which comprises:
- dissolving the electrolytic substance in an organic solvent to form an electrolyte solution for polymer electrolyte,
- impregnating a porous carrier composed of a electrically insulating material with said electrolyte solution,
- contacting the porous carrier impregnated with said electrolytic substance to both of a dielectric substance layer formed on the anode and the electrically conducting cathode,
- assembling said anode, carrier and cathode to form a capacitor element, and
- curing said electrolyte solution for the polymer electrolyte to solidify itself.
- 14. A method for the production of the electrolytic capacitor as claimed in claim 5 or 7, wherein:
- the electrolytic substance is dissolved in at least one organic solvent selected from the group consisting of acetone methyl ethyl ketone, tetrahydrofuran, propylene carbonate, ethylene carbonate and polyalkylene glycol dimethyl ether to obtain an electrolyte solution for the polymer electrolyte,
- the electrolyte solution is extended over the surface of the dielectric substance layer, and
- the extended electrolyte solution is cured to solidify itself.
- 15. A method for the production of the electrolytic capacitor as claimed in claim 5 or 7, wherein:
- the electrolytic substance is dissolved in at least one organic solvent selected from the group consisting of acetone methyl ethyl ketone, tetrahydrofuran, propylene carbonate, ethylene carbonate and polyalkylene glycol dimethyl ether to obtain a fluid electrolyte,
- a porous carrier composed of a electrically insulating material is impregnated with said fluid electrolyte,
- the porous carrier impregnated with said electrolytic substance is contacted to both of a dielectric substance layer formed on said anode and the electrically conducting cathode, and
- said electrolyte solution is cured to solidify itself.
Priority Claims (2)
Number |
Date |
Country |
Kind |
3-272294 |
Oct 1991 |
JPX |
|
4-083545 |
Apr 1992 |
JPX |
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Parent Case Info
This is a continuation of application No. 07/936,387, filed on Aug. 28, 1992, which was abandoned upon the filing hereof.
US Referenced Citations (6)
Foreign Referenced Citations (2)
Number |
Date |
Country |
1503425 |
Nov 1989 |
JPX |
8808612 |
Nov 1988 |
WOX |
Non-Patent Literature Citations (2)
Entry |
S. Chandra et al, "Studies on Ammonium Perchlorate Doped Polyethylene Oxide Polymer Electrolyte", Solid State Ionics 40/41 (1990) pp. 651-654. |
"Electric Conductive Polymers" by Naoya Ogata, published by Kodansha Scientific Inc., Japan 1990, pp. 95-109. |
Continuations (1)
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Number |
Date |
Country |
Parent |
936387 |
Aug 1992 |
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