Claims
- 1. An improved electrolytic capacitor wherein the improvement comprises a composite of an organic layer and an oxide layer formed on aluminum, the composite having a phosphorous to aluminum ratio in the range of 0.001 to 0.1, the oxide layer located between the alumnium and the organic layer, the oxide layer and organic layer of a phosphorous-containing organic compound formed by contact of the aluminum with an aqueous phosphorous-containing organic electrolyte selected from the class consisting of phosphonic acid, phosphinic acid and mixtures of the same dissolved in an aqueous liquid.
- 2. The improved electrolytic capacitor of claim 1 wherein said composite comprises an oxide layer and an organic layer comprising the reaction products of said phosphonic acid or phosphinic acid with the aluminum.
- 3. The improved electrolytic capacitor of claim 2 wherein said oxide layer is bonded to said aluminum and said organic layer is bonded to said oxide layer.
- 4. The improved electrolytic capacitor of claim 3 wherein said organic layer comprises a monomolecular layer of said phosphonic acid or phosphinic acid reacted with said oxide layer.
- 5. The improved electrolytic capacitor of claim 3 wherein said oxide layer and said organic layer are formed by anodizing said aluminum in said aqueous phosphorus-containing organic electrolyte.
- 6. The improved electrolytic capacitor of claim 5 wherein said aluminum has a purity of at least about 99 wt. %.
- 7. The improved electrolytic capacitor of claim 5 wherein said aluminum has a purity of at least about 99.85 wt. %.
- 8. The improved electrolytic capacitor of claim 5 wherein the concentration of said phosphonic acid or phosphinic acid, dissolved in said electrolyte used to form said composite layer by anodizing said aluminum, comprises from about 0.1 to about 2 molar.
- 9. The improved electrolytic capacitor of claim 5 wherein the pH of said electrolyte used to form said composite layer ranges from about 1.0 to 12.
- 10. The improved electrolytic capacitor of claim 9 wherein said aqueous phosphorus-containing organic electrolyte used to form said composite layer comprises a monomeric phosphonic acid dissolved in an aqueous liquid.
- 11. The improved electrolytic capacitor of claim 10 wherein said phosphonic acid dissolved in said aqueous liquid used to form said composite layer comprises water soluble phosphonic acid having the formula R.sub.m [PO(OH).sub.2 ].sub.n wherein R is one or more organic radicals having a total of 1-30 carbons, m is the number of radicals in each molecule ranging from 1-10 and n is the number of phosphonic acid groups in each molecule ranging from 1-10.
- 12. The improved electrolytic capacitor of claim 11 wherein said phosphonic acid dissolved in said electrolyte used to form said composite layer comprises 1-12 carbon atom phosphonic acid.
- 13. The improved electrolytic capacitor of claim 11 wherein said R in said formula is selected from the group consisting of 1-18 carbon aliphatic hydrocarbons, aromatic hydrocarbons, carboxylic acids, aldehydes, ketones, amines, amides, thioamides, imides, lactams, anilines, pyridines, piperidines, carbohydrates, esters, lactones, ethers, alkenes, alkynes, alcohols, nitriles, oximes, organosilicones, ureas, thioureas, perfluoro organic groups, methacrylates and combination of these groups.
- 14. The improved electrolytic capacitor of claim 9 wherein said aqueous phosphorus-containing organic electrolyte used to form said composite layer, comprises a monomeric phosphinic acid dissolved in an aqueous liquid.
- 15. The improved electrolytic capacitor of claim 14 wherein said phosphinic acid dissolved in said aqueous liquid used to form said composite layer comprises water soluble phosphinic acid having the formula R.sub.m R'.sub.o [PO(OH)].sub.n wherein R comprises one or more organic radicals having a total of 1-30 carbons, m is the number of R radicals in each molecule ranging from 1-10, R' comprises hydrogen or one or more organic radicals having a total of 1-30 carbons, o is the number of R' radicals ranging from 1-10 and n is the number of phosphinic acid groups in each molecule ranging from 1-10.
- 16. The improved electrolytic capacitor of claim 15 wherein said monomeric phosphinic acid dissolved in said electrolyte used to form said composite layer comprises 1-12 carbon atom phosphinic acid.
- 17. The improved electrolytic capacitor of claim 15 wherein said R or R' in said formula are selected from the group consisting of 1-18 carbon aliphatic hydrocarbons, aromatic hydrocarbons, carboxylic acids, aldehydes, ketones, amines, amides, thioamides, imides, lactams, anilines, pyridines, piperidines, carbohydrates, esters, lactones, ethers, alkenes, alkynes, alcohols, nitriles, oximes, organosilicones, ureas, thioureas, perfluoro organic groups, methacrylates and combinations of these groups.
- 18. In an improved electroyltic capacitor wherein the improvement comprises an organic layer and an oxide layer formed on aluminum, the oxide layer bonded to the aluminum and located between the aluminum and the organic layer of a phosphorous-containing organic compound, the layers formed by anodizing said aluminum in an aqueous electrolyte containing phosphonic acid, phosphonic acid and mixtures of the acids dissolved in an aqueous liquid, the improved electrolytic capacitor further characterized by the absence of a thermal oxide layer formed on said aluminum prior to anodizing the aluminum to form said layers.
- 19. An improved method of forming an electrolytic capacitor characterized by an improved resistance to hydration comprising:
- (a) selecting a valve metal from the class consisting of aluminum, tantalum and niobium; and
- (b) anodizing said valve metal in an aqueous phosphorus-containing organic electrolyte selected from the class consisting of phosphonic acid, phosphinic acid
- and mixtures of the same dissolved in an aqueous liquid; to form a composite layer comprising a barrier oxide layer bonded to said valve metal and a layer of a phosphorus-containing organic compound bonded to said barrier oxide layer.
- 20. The improved method of forming an electrolytic capacitor of claim 19 which further comprises maintaining the concentration of said phosphonic acid or phosphinic acid, dissolved in said electrolyte used to form said composite layer by anodizing said valve metal, within a range of from about 0.1 to about 2 molar.
- 21. The improved method of forming an electrolytic capacitor of claim 19 which further comprises maintaining the pH of said electrolyte within a range of from about 1.0 to about 12.
- 22. The improved method of claim 21 wherein said anodizing step further comprises anodizing said valve metal in an electrolyte comprising an aqueous solution of phosphonic acid having the formula R.sub.m [PO(OH).sub.2 ].sub.n wherein R is one or more organic radicals having a total of 1-30 carbons, m is the number of radicals in each molecule ranging from 1-10 and n is the number of phosphonic acid groups in each molecule ranging from 1-10.
- 23. The improved method of claim 21 wherein said anodizing step further comprises anodizing said valve metal in an electrolyte comprising an aqueous solution of phosphinic acid molecules having the formula R.sub.m R'.sub.o [PO(OH)].sub.n wherein R comprises one or more organic radicals having, a total of 1-30 carbons, m is the number of R radicals in each molecule ranging from 1-10, R' comprises hydrogen or one or more organic radicals having a total of 1-30 carbons, o is the number of R' radicals ranging from 1-10 and n is the number of phosphinic acid groups in each molecule ranging from 1-10.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. Ser. No. 397,281, filed Aug. 23, 1989.
US Referenced Citations (18)
Foreign Referenced Citations (4)
Number |
Date |
Country |
0246825 |
Nov 1987 |
EPX |
0264972 |
Apr 1988 |
EPX |
62-134920 |
Jun 1987 |
JPX |
63-146424 |
Jun 1988 |
JPX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
397281 |
Aug 1989 |
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