Claims
- 1. A secondary electrochemical cell, which comprises:
a) a casing; b) a unitary negative electrode comprising a first plurality of plates connected by a first metallic connecting element having a plurality of connecting portions defined therein, the negative electrode having a negative electrode active material which intercalates with an alkali metal; c) a unitary positive electrode comprising a second plurality of plates connected by a second metallic connecting element having a plurality of connecting portions defined therein, the negative electrode comprising a positive electrode active material which intercalates with the alkali metal, wherein the negative electrode and positive electrode are electrochemically associated with each other in the casing such that a periphery of each positive electrode plate is completely bounded by a periphery of the adjacent negative electrode plates to prevent alkali metal from plating as the cell is repeatedly cycled between a charged and a discharged condition; d) a separator disposed between the negative electrode and the positive electrode; and, e) an electrolyte solution activating the negative and positive electrodes.
- 2. The secondary electrochemical cell of claim 1, wherein the negative electrode plates have an irregular shape.
- 3. The secondary electrochemical cell of claim 1, wherein the plates have at least one side formed in the shape of a semi-circle.
- 4. The secondary electrochemical cell of claim 1, wherein the plates have at least one side shaped in the form of a semi-ellipse.
- 5. The secondary electrochemical cell of claim 1, wherein the plates comprising the negative electrode increase in size from a first end of the electrode to an opposite end of the electrode.
- 6. The secondary electrochemical cell of claim 1, wherein the positive electrode plates have an irregular shape.
- 7. The secondary electrochemical cell of claim 6, wherein the plurality of connecting portions on the second metallic connecting element increase in length from a first end of the electrode to an opposite end.
- 8. The secondary electrochemical cell of claim 1, wherein the plurality of connecting portions increase in length from a first end of the negative electrode to an opposite end.
- 9. The secondary electrochemical cell of claim 1, wherein the negative and positive electrodes are spirally wound to form a cell stack assembly.
- 10. The secondary electrochemical cell of claim 1, wherein the negative and positive electrodes are spirally wound to form a cell stack assembly.
- 11. The secondary electrochemical cell of claim 1, wherein the plates comprising the positive electrode increase in size from a first end of the electrode to an opposite end of the electrode.
- 12. The secondary electrochemical cell of claim 1, wherein the negative and positive electrodes are wound such that the largest positive plate is disposed in the center of a cell stack and the positive plates disposed on opposite sides of the largest positive plate become gradually smaller as the distance from the largest positive plate increases.
- 13. The secondary electrochemical cell of claim 1, wherein the negative and positive electrodes are wound such that the largest positive plate is disposed between the end and the center of a cell stack.
- 14. The secondary electrochemical cell of claim 1, wherein the negative and positive electrodes are folded to form a cell stack assembly.
- 15. A secondary electrochemical cell, comprising:
a) a casing; b) a unitary negative electrode having a negative electrode active material which intercalates with an alkali metal, the negative electrode being unitary and including a plurality of first plates connected by a metallic connecting portion having a plurality of connecting portions, the connecting portions increasing in length from a first end of the electrode to an opposite end; c) a unitary positive electrode comprising a positive electrode active material which intercalates with the alkali metal, the positive electrode being a unitary member having a plurality of plates connected by a metallic connecting member having a plurality of connecting portions, the connecting portions increasing in length from a first end of the electrode to an opposite end of the electrode, wherein the negative electrode and positive electrode are electrochemically associated with each other in the casing such that a periphery of each positive electrode plate is completely bounded by a periphery of the adjacent negative electrode plates to prevent alkali metal from plating as the cell is repeatedly cycled between a charged and a discharged condition; d) a separator disposed between the negative electrode and the positive electrode; e) an electrolyte solution activating the negative and positive electrodes; and, f) wherein the negative and positive electrode are spirally wound to form a cell stack assembly.
- 16. The secondary electrochemical cell of claim 15, wherein the cell comprises a lithium ion battery.
- 17. The secondary electrochemical cell of claim 15, wherein the connecting portions of the negative electrode are coated with an electrochemically active material.
- 18. The secondary electrochemical cell of claim 15, wherein the connecting portions of the positive electrode are smaller than the connecting portions of the negative electrode and are coated with an electrochemically active material.
- 19. The secondary electrochemical cell of claim 15, wherein the connecting portions are uncoated.
- 20. The secondary electrochemical cell of claim 15, wherein the plates of the negative electrode have an irregular shape.
- 21. The secondary electrochemical cell of claim 15, wherein the plates of the positive electrode have an irregular shape.
- 22. The secondary electrochemical cell of claim 15, wherein the negative electrode plates have a side formed in the shape of a semi-circle.
- 23. The secondary electrochemical cell of claim 15, wherein the positive electrode plates have a side formed in the shape of a semi-circle.
- 24. The secondary electrochemical cell of claim 15, wherein each of the positive electrode plates of the cell stack assembly have a common apex.
- 25. The secondary electrochemical cell of claim 15, wherein each of the negative electrode plates of the cell stack assembly have a common apex.
- 26. The secondary electrochemical cell of claim 15, wherein the negative and positive electrodes are wound such that the largest positive plate is disposed in the center of a cell stack and the positive plates disposed on opposite sides of the largest positive plate become gradually smaller as the distance from the largest positive plate increases.
- 27. The secondary electrochemical cell of claim 15, wherein the negative and positive electrodes are folded to form a cell stack assembly.
- 28. The secondary electrochemical cell of claim 15, wherein the negative and positive electrodes are wound such that the largest positive plate is disposed between the end and the center of a cell stack.
- 29. A method of assembling a cell stack for a secondary electrochemical cell, comprising:
providing a unitary positive electrode having a first plurality of plates connected by a metallic connecting element having a plurality of connecting portions, the connecting portions increasing in length from a first end of the electrode to an opposite end of the electrode; providing a unitary negative electrode having a first plurality of plates connected by a metallic connecting element having a plurality of connecting portions, the connecting portions increasing in length from a first end of the electrode to an opposite end of the electrode; placing the negative electrode and positive electrode adjacent to one another such that the electrodes are aligned such that the positive electrode plates and connecting portions are contained entirely within the boundaries of corresponding negative electrode plates and connecting portions; providing a separator disposed between the negative electrode and the positive electrode; and, forming a cell stack assembly for a secondary electrochemical cell.
- 30. The method of claim 29, wherein one side of each of the negative electrode plates is formed in the shape of a semicircle.
- 31. The method of claim 29, wherein one side of each of the positive electrode plates is formed in the shape of a semicircle.
- 32. The method of claim 29, wherein the connecting portions on the negative electrodes are larger than the connecting portions on the positive electrode.
- 33. The method of claim 32, wherein the connecting portions on the positive and negative electrodes are coated with an electrochemically active material.
- 34. The method of claim 32, wherein the connecting portions on the positive and negative electrodes are uncoated.
- 35. The method of claim 29, wherein the plurality of plates of the negative electrode and the positive electrode increase in size from a first end of the electrodes to an opposite end of the electrodes.
- 36. The method of claim 29, wherein the negative and positive electrodes are wound such that the largest positive plate is disposed in the center of a cell stack and the positive plates disposed on opposite sides of the largest positive plate become gradually smaller as the distance from the largest positive plate increases.
- 37. The method of claim 29, wherein the cell stack is formed by spirally winding the electrodes.
- 38. The method of claim 29, wherein the cell stack is formed by folding the electrodes.
- 39. The method of claim 29, wherein the negative and positive electrodes are wound such that the largest positive plate is disposed between the end and the center of a cell stack.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application claims priority based on U.S. provisional patent application Serial No. 60/203,694, filed May 11, 2000, entitled “Electrochemical Lithium Ion Secondary Cell Having a Scalloped Electrode Assembly,” which is incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60203694 |
May 2000 |
US |