Claims
- 1. A positive electrode active material for secondary lithium and lithium-ion batteries comprising:
at least one electron conducting compound having the formula LiM1x-y{A}yOz wherein M1 is a transition metal; {A} is represented by the formula ΣwiBi wherein Bi is an element other than M1 used to replace the transition metal M1 and wi is the fractional amount of element Bi in the total dopant combination such that Σwi=1; Bi is a cation in LiM1x-y{A}yOz; 0.95≦x≦1.05; 0≦y≦x/2; and 1.90≦z≦2.10; and at least one electron insulating and lithium ion conducting lithium metal oxide.
- 2. The positive electrode active material according to claim 1, wherein the lithium metal oxide is selected from the group consisting of LiAlO2 and Li2M2O3, wherein M2 is at least one tetravalent metal selected from the group consisting of Ti, Zr, Sn, Mn, Mo, Si, Ge, Hf, Ru and Te.
- 3. The positive electrode active material according to claim 2, wherein the lithium metal oxide is selected from the group consisting of Li2TiO3, Li2ZrO3 and mixtures thereof.
- 4. The positive electrode active material according to claim 2, wherein the lithium metal oxide is Li2TiO3.
- 5. The positive electrode active material according to claim 1, comprising from greater than or equal to 95% by weight and less than 100% by weight of LiM1x-y{A}yOz and greater than 0% by weight and less than or equal to 5% by weight of the lithium metal oxide.
- 6. The positive electrode active material according to claim 1, wherein M1 is selected from the group consisting of Co, Ni, Mn and Ti.
- 7. The positive electrode active material according to claim 1, wherein x=1 and z=2.
- 8. The positive electrode active material according to claim 7, wherein M1 is Ni.
- 9. The positive electrode active material according to claim 7, wherein M1 is Co.
- 10. The positive electrode active material according to claim 1, wherein y>0.
- 11. The positive electrode active material according to claim 10, wherein the dopant elements Bi are selected from the group consisting of elements having a Pauling's electronegativity not greater than 2.05, Mo, Te and Ru.
- 12. The positive electrode active material according to claim 10, wherein the dopant elements Bi include two or more dopant cations.
- 13. The positive electrode active material according to claim 12, wherein the average oxidation state E of the dopant elements B1, as determined using the formula E=ΣwiEi wherein Ei is the oxidation state of dopant element Bi in the lithium metal oxide LiM1x-y{A}yOz, is represented by the relationship 2.5≦E≦3.5.
- 14. The positive electrode active material according to claim 13, wherein 2.9≦E≦3.1.
- 15. The positive electrode active material according to claim 13, wherein E=3.
- 16. The positive electrode active material according to claim 12, wherein at least one of the dopant elements B1 has a different oxidation state than M1 in LiM1x-y{A}yOz.
- 17. The positive electrode active material according to claim 12, wherein at least two of the dopant elements Bi have a different oxidation state than M1 in LiM1x-y{A}yOz.
- 18. The positive electrode active material according to claim 1, wherein x, y and z are values that provide a stable lithium metal oxide compound.
- 19. The positive electrode active material according to claim 2, wherein the metal M2 is present in LiM1x-y{A}yOz as M1 or as a dopant element Bi or Al is present as a dopant element Bi.
- 20. The positive electrode active material according to claim 19, wherein the lithium metal oxide has the formula Li2M2O3 and M2 includes Ti.
- 21. The positive electrode active material according to claim 2, wherein M1 is Ni or Co, M2 is Ti, and the dopant elements Bi include Ti4+ and Mg2+.
- 22. The positive electrode active material according to claim 21, wherein M1 is Ni.
- 23. The positive electrode active material according to claim 22, wherein the dopant elements Bi further include Co3+.
- 24. The positive electrode active material according to claim 22, wherein the dopant elements Bi further include Li+ cations.
- 25. The positive electrode active material according to claim 1, wherein the LiM1x-y{A}yOz compound has the formula LiNi1-yCoaM3bM4cO2, wherein M3 is selected from the group consisting of Ti, Zr, and combinations thereof; M4 is selected from the group consisting of Mg, Ca, Sr, Ba, and combinations thereof; y=a+b+c, 0<y≦0.5; 0<a<0.5; 0<b≦0.15; and 0<c≦0.15.
- 26. The positive electrode active material according to claim 25, wherein 0.1≦a≦0.3.
- 27. The positive electrode active material according to claim 25, wherein M3 includes Ti.
- 28. The positive electrode active material according to claim 27, wherein M4 includes Mg.
- 29. The positive electrode active material according to claim 25, further comprising at least one metal oxide of the formula M3O2.
- 30. The positive electrode active material according to claim 29, wherein M3 includes Ti and said metal oxide is TiO2.
- 31. The positive electrode active material according to claim 1, further comprising at least one electron insulating and lithium-ion conducting metal oxide.
- 32. The positive electrode active material according to claim 31, wherein the metal oxide has the formula MO2 wherein M is at least one tetravalent metal selected from the group consisting of Ti, Zr, Sn, Mo, Si, Ge, Hf, Ru and Te.
- 33. The positive electrode active material according to claim 32, wherein M=M2.
- 34. The positive electrode active material according to claim 33, wherein said metal oxide is TiO2.
- 35. A positive electrode for a secondary lithium or lithium-ion battery comprising the positive electrode active material of claim 1, a carbonaceous material and a polymer binder.
- 36. A secondary lithium or lithium-ion battery comprising a positive electrode, a negative electrode and a nonaqueous electrolyte, wherein the positive electrode includes the positive electrode active material of claim 1.
- 37. A positive electrode active material for secondary lithium and lithium-ion batteries comprising at least one compound of the formula LiM1x-y{A}yOz and at least one lithium metal oxide selected from the group consisting of LiAlO2 and Li2M2O3, wherein M1 is a transition metal, M2 is at least one tetravalent metal selected from the group consisting of Ti, Zr, Sn, Mn, Mo, Si, Ge, Hf, Ru and Te, {A} is represented by the formula ΣwiB1 wherein Bi is an element other than M1 used to replace the transition metal M1 and wi is the fractional amount of element B1 in the total dopant combination such that Σwi=1; Bi is a cation in LiM1x-y{A}yOz; 0.95≦x≦2.10; 0≦y≦x/2; and 1.90≦z≦4.20.
- 38. The positive electrode active material according to claim 37, wherein the lithium metal oxide is selected from the group consisting of Li2TiO3, Li2ZrO3 and mixtures thereof.
- 39. The positive electrode active material according to claim 38, wherein the lithium metal oxide is Li2TiO3.
- 40. The positive electrode active material according to claim 37, comprising from greater than or equal to 95% by weight and less than 100% by weight of LiM1x-y{A}yOz and greater than 0% by weight and less than or equal to 5% by weight of the lithium metal oxide.
- 41. The positive electrode active material according to claim 37, wherein x=1 and z=2.
- 42. The positive electrode active material according to claim 37, wherein x=2 and z=4.
- 43. The positive electrode active material according to claim 37, wherein M1 is selected from Co, Ni, Mn, Ti, Fe, Cr, V and Mo.
- 44. The positive electrode active material according to claim 37, wherein M1 is selected from Co, Ni, Mn and Ti.
- 45. The positive electrode active material according to claim 37, wherein y>0.
- 46. The positive electrode active material according to claim 45, wherein the dopant elements Bi are selected from the group consisting of elements having a Pauling's electronegativity not greater than 2.05, Mo, Te and Ru.
- 47. The positive electrode active material according to claim 45, wherein the dopant elements B1 includes two or more dopant cations.
- 48. The positive electrode active material according to claim 47, wherein the average oxidation state E of the dopant elements Bi, as determined using the formula E=Σw1Ei wherein Ei is the oxidation state of dopant element Bi in the lithium metal oxide LiM1x-y{A}yOz, equals the oxidation state of the replaced transition metal ion M1±0.5.
- 49. The positive electrode active material according to claim 48, wherein E equals the oxidation state of the replaced transition metal ion M1±0.1.
- 50. The positive electrode active material according to claim 48, wherein E equals the oxidation state of the replaced transition metal ion M1.
- 51. The positive electrode active material according to claim 47, wherein at least one of the dopant elements Bi has a different oxidation state than M1 in LiM1x-y{A}yOz.
- 52. The positive electrode active material according to claim 47, wherein at least two of the dopant elements Bi have a different oxidation state than M1 in LiM1x-y{A}yOz.
- 53. The positive electrode active material according to claim 37, wherein x, y and z are values that provide a stable lithium metal oxide compound.
- 54. The positive electrode active material according to claim 37, wherein the metal M2 is present in LiM1x-y{A}yOz as M1 or as a dopant element B1, or Al is present as a dopant element Bi.
- 55. The positive electrode active material according to claim 54, wherein the lithium metal oxide has the formula Li2M2O3 and M2 includes Ti.
- 56. The positive electrode active material according to claim 37, further comprising at least one electron insulating and lithium ion conducting metal oxide.
- 57. The positive electrode active material according to claim 56, wherein the metal oxide has the formula MO2 wherein M is at least one tetravalent metal selected from the group consisting of Ti, Zr, Sn, Mo, Si, Ge, Hf, Ru and Te.
- 58. The positive electrode active material according to claim 57, wherein M=M2.
- 59. The positive electrode active material according to claim 57, wherein said metal oxide is TiO2.
- 60. A positive electrode for a secondary lithium or lithium-ion battery comprising the positive electrode active material of claim 37, a carbonaceous material and a binder polymer.
- 61. A secondary lithium or lithium-ion battery comprising a positive electrode, a negative electrode and a nonaqueous electrolyte, wherein the positive electrode includes the positive electrode active material of claim 37.
- 62. A method of preparing a positive electrode active material for secondary lithium and lithium-ion batteries, the positive electrode active material including separate lithium metal oxide phases corresponding to the formulas LiM1x-y{A}yOz and Li2M2O3 or LiAlO2, comprising the steps of:
intimately mixing source compounds containing M1, Li and optionally {A} in amounts sufficient to provide a stoichiometric relationship between M1, Li and {A} corresponding to the formula LiM1x-y{A}yOz wherein M1 is a transition metal, {A} is represented by the formula ΣwiBi wherein Bi is an element other than M1 used to replace the transition metal M1 and wi is the fractional amount of element Bi in the total dopant combination such that Σwi=1; Bi is a cation in LiM1x-y{A}yOz; at least one of M1 and B1 is selected from the group consisting of Ti, Zr, Sn, Mn, Mo, Si, Al, Ge, Hf, Ru and Te; 0.95≦x≦2.10; 0≦y≦x/2; and 1.90≦z≦4.20; firing the mixture in the presence of oxygen at an initial firing temperature and optionally one or more additional firing temperatures, at least one of said initial firing temperature and optionally one or more additional firing temperatures being the maximum firing temperature and at least one of said initial firing temperature and optionally one or more additional firing temperatures being between about 700° C. and about 1000° C., wherein said firing step comprises heating the mixture at a sufficiently slow rate from 500° C. to the maximum firing temperature to produce separate lithium metal oxide phases including LiM1x-y{A}yOz and LiAlO2 or Li2M2O3, wherein M2 is one of M1 and Bi, and M2 is selected from the group consisting of Ti, Zr, Sn, Mn, Mo, Si, Ge, Hf, Ru and Te; and cooling the LiM1x-y{A}yOz and Li2M2O3 or LiAlO2 compounds.
- 63. The method according to claim 62, wherein said firing step comprises heating the mixture from 500° C. to the maximum firing temperature at an average rate of less than or equal to about 10° C./min.
- 64. The method according to claim 62, wherein said firing step comprises heating the mixture at a sufficiently slow rate from 500° C. to the maximum firing temperature to produce separate lithium metal oxide phases including LiM1x-y{A}yOz, Li2M2O3 and M2O2, wherein one of M1 and B1 is M2 and M2 is selected from the group consisting of Ti, Zr, Sn, Mo, Si, Ge, Hf, Ru and Te.
- 65. The method according to claim 64, wherein said mixing step comprises mixing source compound s wherein one of M1 and Bi is selected from the group consisting of Ti and Zr.
- 66. The method according to claim 65, wherein said mixing step comprises mixing source compounds wherein one of M1 and Bi is Ti.
- 67. The method according to claim 62, wherein said mixing step comprises dry mixing the source compounds.
- 68. The method according to claim 62, wherein said mixing step comprises preparing a solution comprising M1 and {A} from source compounds comprising M1 and {A}, precipitating the M1 and {A} out of solution to produce an intimately mixed hydroxide and blending the mixed hydroxide with a lithium source compound.
- 69. The method according to claim 62, wherein said firing step comprises firing the mixture at a partial pressure of oxygen of at least 20 kPa.
- 70. The method according to claim 62, wherein one of M1 and Bi is selected from the group consisting of Ti, Zr, Sn, Mn, Mo, Si, Ge, Hf, Ru and Te.
- 71. The method according to claim 62, wherein said mixing step comprises mixing source compounds such that one of M1 and Bi is Ti.
- 72. The method according to claim 62, wherein said firing step comprises heating the mixture at a sufficiently slow rate from 500° C. to the maximum firing temperature to produce separate lithium metal oxide phases including LiM1x-y{A}yOz and Li2M2O3 or LiAlO2 such that the lithium metal oxide phases include greater than or equal to 95% by weight and less than 100% by weight of LiM1x-y{A}yOz and greater than 0% by weight and less than or equal to 5% by weight of Li2M2O3.
- 73. The method according to claim 62, wherein said mixing step comprises mixing source compounds containing a transition metal M1 selected from the group consisting of Co, Ni, Mn, Ti, Fe, Cr, V and Mo.
- 74. The method according to claim 62, wherein said mixing step comprises mixing source compounds containing a transition metal M1 is selected from Co, Ni, Mn and Ti.
- 75. The method according to claim 62, wherein said mixing step comprises mixing source compounds including dopant elements Bi such that y>0.
- 76. The method according to claim 75, wherein said mixing step comprises mixing source compounds including dopant elements Bi selected from the group consisting of elements having a Pauling's electronegativity not greater than 2.05, Mo, Te and Ru.
- 77. The method according to claim 75, wherein said mixing step comprises mixing source compounds including two or more dopant elements Bi
- 78. The method according to claim 77, wherein said mixing step comprises mixing source compounds wherein the average oxidation state E of the dopant elements Bi, as determined using the formula E=ΣwiEi wherein Ei is the oxidation state of dopant element Bi in the lithium metal oxide LiM1x-y{A}yOz, equals the oxidation state of the replaced transition metal ion M1±0.5.
- 79. The method according to claim 77, wherein said mixing step comprises mixing source compounds wherein the average oxidation state E of the dopant elements Bi, as determined using the formula E=ΣwiEi wherein Ei is the oxidation state of dopant element Bi in the lithium metal oxide LiM1x-y{A}yOz, equals the oxidation state of the replaced transition metal ion M1±0.1.
- 80. The method according to claim 77, wherein said mixing step comprises mixing source compounds wherein the average oxidation state E of the dopant elements Bi, as determined using the formula E=ΣwiEi wherein Ei is the oxidation state of dopant element Bi in the lithium metal oxide LiM1x-y{A}yOz, equals the oxidation state of the replaced transition metal ion M1 .
- 81. The method according to claim 77, wherein said mixing step comprises mixing source compounds wherein at least one of the dopant elements Bi has a different oxidation state than M1 in LiM1x-y{A}yOz.
- 82. The method according to claim 77, wherein said mixing step comprises mixing source compounds wherein at least two of the dopant elements Bi has a different oxidation state than M1 in LiM1x-y{A}yOz.
- 83. The method according to claim 77, wherein said mixing step comprises mixing source compounds in amounts sufficient to provide values for x, y and z that provide a stable metal oxide compound.
- 84. The method according to claim 62, wherein said mixing step comprises mixing the source compounds in amounts sufficient to produce a LiM1x-y{A}yOz compound wherein x=1 and z=2.
- 85. The method according to claim 84, wherein said mixing step comprises mixing source compounds containing Ni or Co as the transition metal M1.
- 86. The method according to claim 85, wherein said mixing step comprises mixing source compounds containing Ti4+ and Mg2+ as dopant elements Bi.
- 87. The method according to claim 86, wherein said mixing step comprises mixing source compounds containing Ni as the transition metal M1.
- 88. The method according to claim 87, wherein said mixing step comprises mixing source compounds further including Co3+ as a dopant element Bi.
- 89. The method according to claim 85, wherein said mixing step comprises mixing source compounds further including Li+ as a dopant element Bi.
- 90. The method according to claim 85, wherein said mixing step comprises mixing source compounds containing Co as the transition metal M1
- 91. The method according to claim 62, wherein said mixing step comprises mixing source compounds containing Li, Ni, Co, M3 and M4 in amounts sufficient to provide a stoichiometric relationship between Li, Ni, Co, M3 and M4 corresponding to the formula LiNi1-yCoaM3bM4cO2 wherein M3 is selected from the group consisting of Ti, Zr, and combinations thereof; M4 is selected from the group consisting of Mg, Ca, Sr, Ba, and combinations thereof; M2 is M3; y=a+b+c, 0<y≦0.5; 0<a<0.5; 0<b≦0.15; and 0<c≦0.15.
- 92. The method according to claim 62, wherein said mixing step comprises mixing the source compounds in amounts sufficient to produce a LiM1x-y{A}yOz compound wherein x=2 and z=4.
- 93. The method according to claim 62, wherein said cooling step comprises cooling the LiM1x-y{A}yOz and Li2M2O3 or LiAlO2 compounds at a rate of greater than or equal to about 0.5° C./min and less than or equal to about 140° C./min.
- 94. The method according to claim 62, wherein said mixing step comprises mixing source compounds such that excess of the source compound containing lithium is provided in the mixture.
- 95. A method of preparing a positive electrode active material for secondary lithium and lithium-ion batteries, the positive electrode active material including separate lithium metal oxide phases corresponding to the formulas LiNi1-yCoaM3bM4cO2 and Li2M3O3 comprising the steps of:
intimately mixing source compounds containing Li, Ni, Co, M3 and M4 in amounts sufficient to provide a stoichiometric relationship between Li, Ni, Co, M3 and M4 corresponding to the formula LiNi1-yCoaM3bM4cO2 wherein M3 is selected from the group consisting of Ti, Zr and combinations thereof; M4 is selected from the group consisting of Mg, Ca, Sr, Ba, and combinations thereof; y=a+b+c, 0<y≦0.5; 0<a<0.5; 0<b≦0.15; and 0<c≦0.15; firing the mixture in the presence of oxygen at an initial firing temperature and optionally one or more additional firing temperatures wherein at least one of the firing temperatures is the maximum firing temperature and wherein at least one of the firing temperatures is between about 700° C. and about 1000° C., said firing step comprising heating the mixture from 500° C. to the maximum firing temperature at an average rate of less than or equal to 10° C./min to produce separate lithium metal oxide phases including LiNi1-yCoaM3bM4cO2 and Li2M3O3; and cooling the LiNi1-yCoaM3bM4cO2 and Li2M3O3 compounds.
- 96. The method according to claim 95, wherein said mixing step comprises mixing source compounds such that M3 includes Ti.
- 97. The method according to claim 96, wherein said mixing step comprises mixing source compounds such that M4 includes Mg.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to commonly owned co-pending provisional application Serial No. 60/313,631, filed Aug. 20, 2001, and claims the benefit of the earlier filing date of this application under 35 U.S.C. §119(e).
Provisional Applications (1)
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Number |
Date |
Country |
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60313631 |
Aug 2001 |
US |