Claims
- 1. A method of storing a large amount of backup energy comprising the steps of:
- (a) providing a capacitor structure including a solid electrolyte layer including RbAg.sub.4 I.sub.5, a negative electrode layer including activated carbon and RbAg.sub.4 I.sub.5, a metal contact layer adjoining a first surface of the negative electrode layer, a second surface of the negative electrode layer adjoining a first surface of the electrolyte layer, and a positive electrode layer including activated carbon and RbAg.sub.4 I.sub.5 adjoining a second surface 10 of the electrolyte layer; and
- (b) supplying a current to charge the positive electrode layer to a voltage in the range from 0.50 volts to 0.66 volts relative to the metal contact layer to cause storage of charge in the capacitor structure in both a double layer capacitance mode and a pseudocapacitance mode and to produce an electric field across the negative electrode layer that causes positive silver ions to pass from the electrolyte layer through the negative electrode layer toward the first surface of the negative electrode layer, to thereby prevent growth of silver dendrites in or on the capacitor structure.
- 2. The method of claim 1 wherein step (a) includes providing nobel metal coated activated carbon in the negative electrode layer.
- 3. A capacitor structure for storing backup energy, comprising in combination:
- (a) a layer of electrolyte material including RbAg.sub.4 I.sub.5 ;
- (b) a layer of negative electrode material including activated carbon and RbAg.sub.4 I.sub.5, a first surface of the layer of negative electrode material adjoining a first surface of the layer of electrolyte material;
- (c) a layer of metal adjoining a second surface of the layer of negative electrode material and forming an electrical contact to the layer of negative electrode material;
- (d) a layer of positive electrode material including activated carbon and RbAg.sub.4 I.sub.5 and adjoining a second surface of the layer of electrolyte material;
- (e) means for charging the capacitor structure to produce a voltage of 0.50 volts to 0.66 volts between the negative electrode material and the positive electrode material, to thereby cause storage of charge in a double layer capacitance mode and also in a pseudocapacitance mode and to produce an electric field across the layer of negative electrode material and thereby cause positively charged silver ions to migrate through the layer of negative electrode material to the layer of metal; and
- (f) accumulations of migrated silver away from the layer of electrolyte material.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of the pending continuation-in-part patent application Ser. No. 756,315, entitled "Solid Electrolyte Capacitor and Method of Making", filed Sept. 6, 1991 by John F. Bruder et al., which is a continuation-in-part of pending patent application Ser. No. 562,234, filed Aug. 3, 1990, entitled "Solid Electrolyte Capacitor and Method of Making", by John F. Bruder assigned to the present assignee, which will issue as U.S. Pat. No. 5,047,899 on Sept. 10, 1991.
US Referenced Citations (7)
Non-Patent Literature Citations (4)
Entry |
"Applications Of Halogenide Solid Electrolytes", by B. B. Owens, J. E. Oxley, and A. F. Sammells, pp. 67-104. |
"A Solid State Electrochemical Capacitor", by J. E. Oxley, Abstract No. 175, pp. 446-447. |
"Solid State Energy Storage Device", by J. E. Oxley, Session on Secondary Batteries, pp. 20-23. |
"Solid Electrolyte Batteries", by B. B. Owens, pp. 28-30. |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
756315 |
Sep 1991 |
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Parent |
562234 |
Aug 1990 |
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