Claims
- 1. An electrochemical cell comprising:
a container; a cathode material disposed in the container and presenting an anode-facing surface; an anode material disposed in the container adjacent the anode-facing surface; and a conformal separator disposed between the anode-facing surface of the cathode and the anode, wherein the separator prohibits electrical contact between the anode and cathode while permitting electrolyte transfer between the anode and cathode, the separator being formed from a polymer and an inorganic crosslinking agent.
- 2. The electrochemical cell as recited in claim 1, wherein the crosslinking agent comprises a borate derivative.
- 3. The electrochemical cell as recited in claim 2, wherein the borate derivative is selected from the group consisting of potassium borate, sodium borate, zinc borate, and boric acid.
- 4. The electrochemical cell as recited in claim 3, wherein the borate derivative is boric acid.
- 5. The electrochemical cell as recited in claim 4, wherein the borate derivative is mixed with the polymer and electrolyte.
- 6. The electrochemical cell as recited in claim 1, wherein the polymer comprises a plurality of hydroxyl groups.
- 7. The electrochemical cell as recited in claim 6, wherein the polymer is a vinyl alcohol.
- 8. The electrochemical cell as recited in claim 7, wherein the polymer comprises polyvinyl alcohol.
- 9. The electrochemical cell as recited in claim 8, wherein the polyvinyl alcohol has an average molecular weight greater than 13,000 and less than 500,000.
- 10. The electrochemical cell as recited in claim 1, wherein the cell is selected from the group consisting of a cylindrical cell and a metal-air cell.
- 11. The cell as recited in claim 1, wherein the separator further comprises a non-woven fabric having at least one of an inner surface that faces the anode when installed within the cell and an outer surface that faces the cathode when installed within the cell, further comprising a crosslinked polymer disposed on a surface selected from the inner surface and the outer surface.
- 12. The electrochemical cell as recited in claim 1, wherein the polymer comprises a di-alcohol.
- 13. The electrochemical cell as recited in claim 1, wherein the polymer is selected from the group consisting of guar gum, guar gum derivatives, copolymers of polyvinyl alcohol, and polymeric materials with hydroxyl functional groups.
- 14. The electrochemical cell as recited in claim 1, wherein the polymer comprises polyvinyl alcohol and the crosslinking agent comprises a borate derivative, and wherein the weight ratio between the borate derivative and the vinyl alcohol is between 1:1000 and 1:1.
- 15. The electrochemical cell as recited in claim 1, wherein the crosslinking agent is a Lewis acid, and wherein the polymer is a Lewis base.
- 16. An electrochemical cell comprising:
a container; a cathode material disposed in the container having a surface that at least partially defines a void within the cell; an anode material disposed in the container and at least partially occupying the void; and a conformal separator disposed between the cathode surface and anode, wherein the separator prohibits electrical contact between the anode and cathode while permitting electrolyte transfer between the anode and cathode, the separator being formed from a polymer and a borate-derivative crosslinking agent.
- 17. The electrochemical cell as recited in claim 16, wherein the crosslinking agent comprises a borate ester.
- 18. The electrochemical cell as recited in claim 17, wherein the borate ester is selected from the group consisting of boric acid esters, cyclic boric acid esters, and DeCORE BE-85.
- 19. The electrochemical cell as recited in claim 16, wherein the polymer is selected from the group consisting of alcohol, guar gum, guar gum derivatives, copolymers of polyvinyl alcohol, and polymeric materials with hydroxyl functional groups.
- 20. The electrochemical cell as recited in claim 19, wherein the polymer comprises polyvinyl alcohol.
- 21. The electrochemical cell as recited in claim 16, wherein the cell is selected from the group consisting of a cylindrical cell and a metal-air cell.
- 22. A method of preparing a conformal separator for an electrochemical cell defining an enclosure, the steps comprising:
(a) installing a cathode within the enclosure, the cathode presenting an anode-facing surface; (b) installing an anode within the enclosure, wherein anode is disposed adjacent the anode-facing surface; (c) crosslinking a polymer with an inorganic crosslinking agent to form a compound; and (d) applying the compound to the anode-facing surface, wherein the compound prevents electrical contact between the anode and cathode while permitting electrolyte transfer between the anode and cathode.
- 23. The method as recited in claim 22, wherein the crosslinking agent is a borate derivative, and wherein the polymer is a vinyl alcohol.
- 24. The method as recited in claim 23, wherein the compound is applied to the anode-facing surface prior to installing the cathode within the enclosure.
- 25. The method as recited in claim 23, wherein the compound is applied to the anode-facing surface after installing the cathode within the enclosure.
- 26. The method as recited in claim 23, wherein the borate derivative is boric acid, and wherein step (c) further comprising adding a base solution to the cathode.
- 27. The method as recited in claim 26, wherein the cathode is wetted with the base solution prior to step (d).
- 28. The method as recited in step 26, wherein the cathode is wetted with the base solution after step (d).
- 29. A method of preparing a conformal separator for an electrochemical cell defining an enclosure, the steps comprising:
(a) installing a cathode within the enclosure, the cathode presenting an anode-facing surface; (b) installing an anode within the enclosure, wherein anode is disposed adjacent the anode-facing surface; (c) applying an inorganic crosslinking agent to the cathode at an interface between the cathode and the anode; and (d) subsequently applying a polymer to the anode-facing surface of the cathode to form a crosslinked polymer, wherein the crosslinked polymer prevents electrical contact between the anode and cathode while permitting electrolyte transfer between the anode and cathode.
- 30. The method as recited in claim 29, wherein step (c) is performed prior to step (a).
- 31. The method as recited in claim 29, wherein step (c) is performed after step (a).
- 32. The method as recited in claim 29, wherein the crosslinking agent is a borate derivative.
- 33. The method as recited in claim 32, wherein the borate derivative is selected from the group consisting of sodium borate, potassium borate, zinc borate, and boric acid.
- 34. The method as recited in claim 33, wherein the crosslinking agent is boric acid, further comprising adding a base solution to the cathode.
- 35. The method as recited in claim 34, wherein the base solution is added prior to step (a).
- 36. The method as recited in step 35, wherein the base solution is added after step (a).
- 37. A method of preparing a conformal separator for an electrochemical cell having an anode and a cathode, the steps comprising:
(a) installing a cathode within the enclosure, the cathode presenting an anode-facing surface; (b) installing an anode within the enclosure, wherein anode is disposed adjacent the anode-facing surface; (c) applying a solution containing a polymer and an inorganic crosslinking agent onto the anode-facing surface of the cathode at an interface between the anode; and (d) reacting at least one of the polymer and crosslinking with a constituent of the electrolye solution to cause the formation of a separator compound at the anode-facing surface, wherein the compound prevents electrical contact between the anode and cathode while permitting electrolyte transfer between the anode and cathode.
- 38. The method as recited in claim 37, wherein step (c) further comprises spraying the solution onto the anode-facing surface.
- 39. The method as recited in claim 37, wherein the constituent comprises a base solution.
- 40. The method as recited in claim 39, wherein the constituent comprises KOH.
- 41. The method as recited in claim 37, wherein the constituent of the electrolyte solution is added to the cathode prior to step (c).
- 42. The method as recited in claim 37, wherein the constituent of the electrolyte solution is added to the cathode after step (c).
- 43. The method as recited in claim 37, wherein the cathode is installed in the cell prior to step (c).
- 44. The method as recited in claim 37, wherein the cathode is installed in the cell after step (c).
- 45. A method of preparing a conformal separator for an electrochemical cell having an anode and a cathode, the steps comprising:
(a) installing a cathode within the enclosure, the cathode presenting an anode-facing surface; (b) installing an anode within the enclosure, wherein anode is disposed adjacent the anode-facing surface; (c) applying a crosslinking agent to the anode-facing surface of the cathode; and (d) after step (c), spraying a crosslinkable polymer on the anode-facing surface of the cathode to form a crosslinked polymer; and (e) repeating steps (c) and (d) at least once to build up a compound that prevents electrical contact between the anode and cathode while permitting electrolyte transfer between the anode and cathode.
- 46. The method as recited in claim 45, wherein the crosslinking agent is inorganic.
- 47. The method as recited in claim 46, wherein the crosslinking agent is a borate derivative.
- 48. The method as recited in claim 45, wherein the polymer comprises an alcohol.
- 48. The method as recited in claim 45, wherein step (c) occurs before step (a).
- 49. The method as recited in claim 45, wherein step (c) occurs after step (a).
- 50. A method of preparing a non-woven fabric separator having a crosslinked polymer disposed on its surface for an electrochemical cell, the steps comprising:
(a) applying an inorganic crosslinking agent to the surface of the paper; and (b) subsequently applying a crosslinkable polymer to the surface of the separator to form a crosslinked polymer, wherein the compound prevents electrical contact between the anode and the cathode during cell use.
- 51. The method as recited in claim 50, wherein the non-woven fabric has a thickness not greater than 0.13 mm.
- 52. The method as recited in claim 50, further comprising the steps of installing the treated separator in an electrochemical cell after step (b) and subsequently applying an alkaline solution to cause the polymer to crosslink in the presence of the crosslinking agent.
- 53. The method as recited in claim 50, further comprising the steps of installing the non-woven fabric in an electrochemical cell prior to step (a) and applying an alkaline solution to the separator after step (b) to cause the polymer to crosslink in the presence of the crosslinking agent.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority to U.S. provisional patent application No. 60/293,588 entitled “Conformal Separator for an Electrochemical Cell” and filed May 24, 2001, the disclosure of which is hereby incorporated by reference as if set forth in its entirety herein.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] The U.S. Government has a paid-up license in this invention and the right in limited circumstances to require the patent owner to license others on reasonable terms as provided for by the terms of Contract No. CECOM DAAB07-00-C-D301.
Provisional Applications (1)
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Number |
Date |
Country |
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60293588 |
May 2001 |
US |