Claims
- 1. A solid electrolyte comprising:
- a polymer network comprising poly(vinyl chloride);
- a solvate consisting of an alkali metal salt dissolved within one or more aprotic organic solvents; and
- a low boiling solvent capable of evaporating off of the polymer/solvate mixture at about room temperature.
- 2. The solid electrolyte of claim 1, wherein said alkali metal salt is a low lattice energy lithium salt.
- 3. The solid electrolyte of claim 2, wherein said low lattice energy lithium salt is selected from the group consisting of LiClO.sub.4, LiBF.sub.4, LiAsF.sub.6, LiCF.sub.3 SO.sub.3, LiPF.sub.6, and LiN(CF.sub.3 SO.sub.2).
- 4. The solid electrolyte of claim 1, wherein said electrolyte contains between 5 and 15 weight-percent of said alkali metal salt.
- 5. The solid electrolyte of claim 1, wherein said polymer network further comprises a mixture of poly(vinyl chloride) and poly(vinyl acetate).
- 6. The solid electrolyte of claim 1, wherein said aprotic organic solvent is selected from a group consisting of propylene carbonate, ethylene carbonate, dimethyl sulfoxide, tetramethylene sulfone (sulfolane), gamma-butyrolactone, N-methyl-2-pyrrolidinone, and tri-and tetra-ethylene glycol dimethyl ether.
- 7. The solid electrolyte of claim 1, wherein said electrolyte contains between 50 and 90 weight-percent of said aprotic organic solvent.
- 8. The solid electrolyte of claim 1, wherein said electrolyte contains between 5 and 30 weight percent of said polymer network.
- 9. The solid electrolyte of claim 1, wherein said low boiling solvent is tetrahydrofuran.
- 10. A rechargeable electrochemical cell comprising:
- an alkali metal containing anode;
- a cathode; and
- solid electrolyte containing a polymer network comprising poly(vinyl chloride); a solvate consisting of an alkali metal salt dissolved within one or more aprotic organic solvents; and a low boiling solvent capable of evaporating off of the polymer/solvate mixture at about room temperature.
- 11. The rechargeable cell of claim 10, wherein said alkali metal containing anode is lithium.
- 12. The rechargeable cell of claim 10, wherein said alkali metal containing anode is a lithium alloy.
- 13. The rechargeable cell of claim 12, wherein said lithium alloy is selected from the group consisting of lithium-aluminum, lithium-tin, lithium-lead, lithium-zinc, and lithium-magnesium.
- 14. The rechargeable cell of claim 10, wherein said alkali metal containing anode is a lithium containing compound.
- 15. The rechargeable cell of claim 14, wherein said lithium containing compound is graphitic carbon.
- 16. The rechargeable cell of claim 14, wherein said lithium containing compound is a lithium-transition metal oxide.
- 17. The rechargeable cell of claim 14, wherein said lithium containing compound is a lithium-transition metal sulfide.
- 18. The rechargeable cell of claim 14, wherein said cathode is a metal or a mixed metal oxide.
- 19. The rechargeable cell of claim 14, wherein said cathode is a metal chalcogenide.
- 20. The rechargeable cell of claim 14, wherein said cathode is selected from the group consisting of TiS.sub.2, FeS.sub.2, V.sub.6 O.sub.13, LiNiO.sub.2, V.sub.2 O.sub.5, LiCoO.sub.2, MnO.sub.2, Li.sub.x Mn.sub.y O.sub.z, and LiM.sub.1-y M'.sub.y O.sub.2, where M and M' are transition metals.
- 21. A method for preparing solid electrolytes comprising:
- combining a polymer network comprising poly(vinyl chloride), with a solvate consisting of an alkali metal salt dissolved within one or more aprotic organic solvents, and a low boiling solvent; and
- evaporating off the low boiling solvent at about room temperature.
FIELD OF INVENTION
This invention was made with Government support under Contract DE-FG01-90ER81078 awarded by the United States Department of Energy. The Government has certain rights in this invention.
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0279554 |
Aug 1988 |
EPX |
Non-Patent Literature Citations (2)
Entry |
M. Watanabe et al., Makromol. Chem., Rapid Commun. 2, 741 (1981). |
K. M. Abraham et al., J. Electrochem. Soc., 137, 1657 (1990). |