Claims
- 1. An electrochemical cell, comprising:
a) a casing of electrically conductive material; b) a first electrochemical couple housed within the casing and dischargeable at a substantially constant discharge rate, the first couple comprising;
i) an anode comprising alkali metal; and ii) a first cathode of a first cathode active material selected from the group consisting of a metal, a metal oxide, a mixed metal oxide, a metal sulfide and a carbonaceous compound, and mixtures thereof; c) a second electrochemical couple housed within the casing and dischargeable at a current pulse discharge rate, the second couple comprising:
i) the anode; and ii) a second cathode of a second cathode active material selected from the group consisting of a metal, a metal oxide, a mixed metal oxide, a metal sulfide, and mixtures thereof; and d) an electrolyte solution operatively associated with the first electrochemical couple and the second electrochemical couple, wherein the first couple is dischargeable independent of the second couple to provide separate and independent sources of electrical energy.
- 2. The electrochemical cell of claim 1 wherein the substantially constant discharge rate is at a range of currents of about 1 microampere to about 100 milliamperes corresponding to a C-Rate of about C/2,300,000 to about C/23, and wherein the current pulse discharge rate is about 1 ampere to about 4 amperes corresponding to a C-Rate of about C/2.3 to about C/0.575.
- 3. The electrochemical cell of claim 1 wherein the first electrochemical couple comprises portions of the anode disposed adjacent to opposite sides of the first cathode and wherein the second electrochemical couple comprises portions of the anode disposed adjacent to opposed sides of the second cathode.
- 4. The electrochemical cell of claim 1 wherein the anode is comprised of lithium.
- 5. The electrochemical cell of claim 1 wherein the electrolyte comprises a first solvent selected from the group consisting diisopropylether, 1,2-dimethoxyethane, 1,2-diethoxyethane, 1-ethoxy,2-methoxyethane, dimethyl carbonate, diethyl carbonate, dipropyl carbonate, ethylmethyl carbonate, methylpropyl carbonate, ethylpropyl carbonate, methyl acetate, tetrahydrofuran, diglyme, triglyme, tetraglyme, and mixtures thereof, and a second solvent selected from the group consisting of propylene carbonate, ethylene carbonate, butylene carbonate, γ-valerolactone, γ-butyrolactone, N-methyl-pyrrolidinone, dimethyl sulfoxide, acetonitrile, dimethyl formamide, dimethyl acetamide, and mixtures thereof.
- 6. The electrochemical cell of claim 1 wherein the electrolyte is selected from the group consisting of LiPF6, LiAsF6, LiSbF6, LiBF4, LiClO4, LiAlCl4, LiGaCl4, LiC(SO2CF3)3, LiN(SO2CF3)2, LiSCN, LiO3SCF2CF3, LiC6F5SO3, LiO2CCF3, LiSO3F, LiNO3, LiB(C6H5)4, LiCF3SO3, and mixtures thereof.
- 7. The electrochemical cell of claim 1 wherein the second electrochemical couple is dischargeable to deliver at least two current pulses in succession with or without an open circuit period between the pulses.
- 8. The electrochemical cell of claim 1 wherein the current pulse is of about 15.0 mA/cm2 to about 35.0 mA/cm2.
- 9. The electrochemical cell of claim 1 associated with an implantable medical device powered by the cell.
- 10. An electrochemical cell comprising a first region providing a first effective interelectrode surface area and a second region providing a second effective interelectrode surface area greater than the first effective interelectrode surface area, wherein the first effective interelectrode surface area is dischargeable at a range of currents of about 1 microampere to about 100 milliamperes corresponding to a C-Rate of about C/2,300,000 to about C/23, and wherein the second effective interelectrode surface area is dischargeable at a range of currents of about 1 ampere to about 4 amperes corresponding to a C-Rate of about C/2.3 to C/0.575.
- 11. An electrochemical cell capable of delivering electrical current in a first range of currents and which is independently and simultaneously capable of delivering electrical current in a second range of currents greater than the first range.
- 12. The electrochemical cell of claim 11 wherein a first electrode is a lithium anode and a second electrode is a silver vanadium oxide cathode and wherein the first range of currents is about 1 microamperes to about 100 milliamperes corresponding to a C-Rate of about C/2,300,000 to about C/23, and wherein the second range of currents is about 1 ampere to about 4 amperes corresponding to a C-Rate of about C/2.3 to about C/0.575.
- 13. In combination with an implantable medical device requiring electrical power for a monitoring function and for a device operating function, an electrochemical cell having a lithium anode and a silver vanadium oxide cathode, wherein the cell is capable of providing an electrical current of about 1 microampere to about 100 milliamperes corresponding to a C-Rate of about C/2,300,000 to about C/23 for the monitoring function, and wherein the electrochemical cell is independently and simultaneously capable of delivering electrical pulse currents of about 1 ampere to about 4 amperes corresponding to a C-Rate of about C/2.3 to about C/0.575 for the device operating function.
- 14. In combination with an implantable medical device requiring electrical power for a monitoring function and a device operating function, an electrochemical cell comprising:
a) a medium rate, constant dischargeable or constant drain electrochemical couple for providing low level currents for the monitoring function; b) a high rate, pulse dischargeable electrochemical couple for providing high level currents for the operating function; and c) a single casing containing both couples, wherein the medium rate, constant drain couple and the high rate, pulse dischargeable couple share the same anode and wherein the low level currents are about 1 microampere to about 100 milliamperes corresponding to a C-Rate of about C/2,300,000 to about C/23, and wherein the high level currents are about 1 ampere to about 4 amperes corresponding to a C-Rate of about C/2.3 to about C/0.575.
- 15. The combination of claim 14 wherein the casing has a prismatic shape.
- 16. A method for providing simultaneous and independent electrical discharge at both a substantially constant discharge rate and under a current pulse discharge rate, comprising the steps of:
a) providing a casing of electrically conductive material; b) housing a first electrochemical couple within the casing, comprising the steps of:
i) providing an anode comprising alkali metal electrically connected to an anode current collector; and ii) providing a first cathode of cathode active material electrically connected to a first cathode current collector, wherein the first cathode is electrically associated with a first portion of the anode; c) housing a second electrochemical couple within the casing, comprising the steps of:
i) providing a second cathode of cathode active material electrically connected to a second cathode current collector; and ii) electrically associating the second cathode with a second portion of the anode not already associated with the first cathode; d) activating the first and second electrochemical couples with an electrolyte solution operatively associated therewith; and e) discharging the first electrochemical couple under a substantially constant discharge rate and discharging the second electrochemical couple under a current pulse discharge rate.
- 17. The method of claim 16 including providing the substantially constant discharge rate in a range of currents of about 1 microampere to about 100 milliamperes corresponding to a C-Rate of about C/2,300,000 to about C/23, and providing the current pulse discharge rate in a range of currents of about 1 ampere to about 4 amperes corresponding to a C-Rate of about C/2.3 to about C/0.575.
- 18. The method of claim 16 including electrically connecting the anode current collector to the casing and further electrically connecting both the first and second cathode current collectors to respective cathode terminals electrically insulated from the casing.
- 19. The method of claim 16 including providing the anode comprised of lithium.
- 20. The method of claim 16 including activating the first and second electrochemical couples with the electrolyte solution comprising a first solvent selected from the group consisting diisopropylether, 1,2-dimethoxyethane, 1,2-diethoxyethane, 1-ethoxy,2-methoxyethane, dimethyl carbonate, diethyl carbonate, dipropyl carbonate, ethylmethyl carbonate, methylpropyl carbonate, ethylpropyl carbonate, methyl acetate, tetrahydrofuran, diglyme, triglyme, tetraglyme, and mixtures thereof, and a second solvent selected from the group consisting of propylene carbonate, ethylene carbonate, butylene carbonate, γ-valerolactone, γ-butyrolactone, N-methyl-pyrrolidinone, dimethyl sulfoxide, acetonitrile, dimethyl formamide, dimethyl acetamide, and mixtures thereof.
- 21. The method of claim 16 including selecting the electrolyte from the group consisting of LiPF6, LiAsF6, LiSbF6, LiBF4, LiClO4, LiAlCl4, LiGaCl4, LiC(SO2CF3)3, LiN(SO2CF3)2, LISCN, LiO3SCF2CF3, LiC6F5SO3, LiO2CCF3, LiSO3F, LiNO3, LiB(C6H5)4, LiCF3SO3, and mixtures thereof.
- 22. The method of claim 16 including selecting the cathode active material of both the first and second cathodes from the group consisting of silver vanadium oxide, copper silver vanadium oxide, manganese dioxide, cobalt oxide, nickel oxide, copper oxide, titanium disulfide, copper sulfide, iron sulfide, iron disulfide copper vanadium oxide, carbon, fluorinated carbon, and mixtures thereof.
- 23. A method for discharging an electrochemical cell to provide separate and independent sources of electrical energy, comprising the steps of:
a) providing a first electrode in a folded, accordion pleated shape and comprising a first electrode active material; b) providing a second electrode electrically associate with the first electrode and having at least a first region and a second region provided by respective first and second structures of the second electrode disposed between the folds of the first electrode with at least a portion of the first electrode in a face-to-face relationship with at least one side of each of the first and second structures of the second electrode; c) activating the operatively associated first electrode and the second electrode with an electrolyte solution; and d) discharging the first electrode and the first region of the second electrode at a first rate independent of the first electrode and the second region of the second electrode at a second rate as separate and independent sources of electrical energy, wherein the first rate is in a range of currents of about 1 microampere to about 100 milliamperes corresponding to a C-Rate of about C/2,300,000 to about C/23, and the second rate is in a range of currents of about 1 ampere to about 4 amperes corresponding to a C-Rate of about C/2.3 to about C/0.575.
- 24. The method of claim 23 including providing the first electrode as an anode and further including providing the first region of the cell comprising a first cathode of a first cathode active material and the second region of the cell comprising a second cathode of a second cathode active material.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/247,347, filed Feb. 10, 1999, which is a divisional of U.S. application Ser. No. 08/832,803, now U.S. Pat. No. 5,935,724 to Spillman et al.
Divisions (1)
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Number |
Date |
Country |
Parent |
08832803 |
Apr 1997 |
US |
Child |
09247347 |
Feb 1999 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09247347 |
Feb 1999 |
US |
Child |
09848457 |
May 2001 |
US |