Claims
- 1. An electrode for a non-aqueous lithium electrochemical cell, comprising a lithium-metal oxide compound having a layered Li2MO2 structure in which M is selected at least two positively charged metal ions with an atomic number less than 51.
- 2. The electrode of claim 1, wherein the M and Li ions are partially disordered over the M and Li crystallographic sites of the Li2MO2 structure.
- 3. The electrode of claim 1, wherein the lithium ions are at least partially ion-exchanged with hydrogen ions.
- 4. The electrode of claim 1, wherein the Li2MO2 electrode is mixed or coated with an electronic conductor.
- 5. The electrode of claim 1, wherein M is selected from the first row of transition metal elements.
- 6. The electrode of claim 5, wherein M is selected from Ti, V, Cr, Fe, Mn, Co, Ni and Cu ions.
- 7. The electrode of claim 6, wherein M is Mn and Ni ions.
- 8. The electrode of claim 5, wherein M is partially substituted by one or more monovalent or multivalent non-transition metal ions with an atomic number less than 51.
- 9. The electrode of claim 5, wherein M is partially substituted by Li, Mg, Al or Sn ions.
- 10. The electrode of claim 1, wherein Li2MO2 is derived from a xLiMO2.(1−x)Li2MO3 solid solution or composite structure in which M′ is selected from one or more of Ti, Mn, Zr, Ru and Sn ions.
- 11. The electrode of claim 1, wherein Li2MO2 is the positive electrode of an electrochemical cell.
- 12. The electrode of claim 1, wherein Li2MO2 is the precursor for a positive LiMO2 electrode of an electrochemical cell.
- 13. Electrode of claim 1, wherein Li2MO2 is the negative electrode of an electrochemical cell.
- 14. Electrode of claim 1, wherein Li2MO2 is the end-of-discharge indicator for an electrochemical cell.
- 15 The electrode of claim 1, wherein Li2MO2 is blended or mixed with one or more secondary positive electrodes for a lithium electrochemical cell.
- 16. The electrode of claim 15, wherein the secondary positive electrode has a layered, spinel or olivine-type structure
- 17. The electrode of claim 16, wherein the secondary positive electrode is selected from LiCoO2, LiNiO2, LiMnO2, LiMn0.5Ni0.5O2, LiMn1/3Ni1/3Co1/3O2, LiNi0.8Co0.15Al0.05O2, LiNi0.75Co0.15Ti0.05Mg0.05O2, Li1+xMn2−xO4 (0<x<0.33), LiFePO4, LiMnPO4 and LiCoPO4.
- 18. A compound comprising a lithium-metal oxide having a layered Li2MO2 structure 00in which M is selected from two or more positively charged metal ions with an atomic number less than 51.
- 19. The compound of claim 18, wherein the M and Li ions are partially disordered over the M and Li crystallographic sites of the Li2MO2 structure.
- 20. The compound of claim 18, the lithium ions are at least partially ion-exchanged with hydrogen ions.
- 21. The compound of claim 18, wherein M is selected from the first row of transition metal elements.
- 22. The compound of claim 18, wherein M is selected from Ti, V, Cr, Fe, Mn, Co, Ni and Cu ions.
- 23. The compound of claim 18, wherein M is Mn and Ni ions.
- 24. A method for synthesizing an electrode for a non-aqueous lithium electrochemical cell including a lithium-metal oxide compound having a layered Li2MO2 structure in which M is selected from two or more positively charged transition metal ions with an atomic number less than 51, comprising the electrochemical insertion of lithium into a lithium metal oxide electrode precursor containing the M cations.
- 25. A method for synthesizing an electrode for a non-aqueous lithium electrochemical cell, comprising a lithium-metal oxide compound having a layered Li2MO2 structure in which M is selected from two or more positively charged transition metal ions with an atomic number less than 51, the method comprising the chemical reaction of a lithiating agent with a lithium metal oxide electrode precursor containing the M cations.
- 26. The method of claim 25, wherein the lithiating agent is metallic lithium, vapor-deposited lithium, n-butyllithium, lithium napthalide, or lithium dissolved in ammonia.
- 27. A method for synthesizing an electrode for a non-aqueous lithium electrochemical cell, comprising a lithium-metal oxide compound having a layered Li2MO2 structure in which M is selected from two or more positively charged transition metal ions with an atomic number less than 51, the method comprising the ion-exchange of a M(OH)2 precursor with a suitable lithiating agent such as LiBr or LiCl, dissolved in hexanol.
- 28. A non-aqueous lithium electrochemical cell comprising a negative electrode, an electrolyte and a positive electrode, wherein at least one electrode comprising the electrode of claim 1
- 29. The cell of claim 23 in which the negative electrode is selected from carbon, graphite, a metal, a metal oxide, a metal nitride, or an intermetallic compound.
- 30. A non-aqueous lithium electrochemical cell comprising a negative electrode, an electrolyte and a positive electrode, the negative electrode comprising the electrode of claim 1.
- 31. A non-aqueous lithium electrochemical cell comprising a negative electrode, an electrolyte and a positive electrode, the positive and negative electrodes consisting of LiMO2 precursors for the electrode of claim 1.
- 32. A non-aqueous lithium battery comprising a plurality of electrically connected electrochemical cells, electrically connected, each cell comprising a negative electrode, an electrolyte and a positive electrode, the positive electrode comprising the electrode of claim 1.
- 33. A non-aqueous lithium battery comprising a plurality of electrically connected electrochemical cells, each cell comprising a negative electrode, an electrolyte and a positive electrode, the negative electrode comprising the electrode of claim 1.
- 34. A non-aqueous lithium battery comprising a plurality of electrically connected electrochemical cells, electrically connected, each cell comprising a negative electrode, an electrolyte and a positive electrode, the positive and negative electrodes consisting of LiMO2 precursors for the electrode of claim 1.
RELATED APPLICATIONS
[0001] This application, pursuant to 37 C.F.R. 1.78(c), claims priority based on provisional application serial No. 60/357,393 filed on 15 Feb. 2002.
CONTRACTUAL ORIGIN OF THE INVENTION
[0002] The United States Government has rights in this invention pursuant to Contract No. W-31-109-ENG-38 between the U.S. Department of Energy (DOE) and The University of Chicago representing Argonne National Laboratory.
Provisional Applications (1)
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Number |
Date |
Country |
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60357393 |
Feb 2002 |
US |