Positive electrode active material, method for manufacturing positive electrode active material, and secondary battery
A positive electrode active material having high capacity and excellent cycle performance is provided. The positive electrode active material has a small difference in a crystal structure between the charged state and the discharged state. For example, the crystal structure and volume of the positive electrode active material, which has a layered rock-salt crystal structure in the discharged state and a pseudo-spinel crystal structure in the charged state at a high voltage of approximately 4.6 V, are less likely to be changed by charge and discharge as compared with those of a known positive electrode active material.
1. A method for manufacturing a lithium-ion secondary battery comprising a positive electrode which includes a positive electrode active material, a negative electrode, and an electrolyte, the method comprising the steps of:
mixing a lithium source, a cobalt source, a magnesium source, and a fluorine source to form a mixture;
performing a first heating on the mixture to form a composite oxide; and
performing a second heating on the composite oxide so that magnesium of the magnesium source is segregated at a surface portion of the positive electrode active material,
wherein a temperature of the second heating is lower than a temperature of the first heating,
wherein the mixture comprises a magnesium compound and a compound comprising lithium and fluorine.
2. The method according to claim 1 , wherein the magnesium compound comprises magnesium oxide.
3. The method according to claim 1 , wherein the magnesium compound comprises magnesium fluoride.
4. The method according to claim 1 , wherein the temperature of the first heating is higher than or equal to 800° C. and lower than 1100° C.
5. The method according to claim 1 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2 θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line in a charged state, and
wherein the positive electrode active material has a property that the positive electrode active material comprises an O3 crystal structure in a discharged state.
6. The method according to claim 1 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when a charged depth is 0.8 or greater, and
wherein the positive electrode active material has a property that the positive electrode active material comprises an O3 crystal structure when a charge depth is 0.06 or less.
7. The method according to claim 1 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when charged with a lithium metal counter electrode at 25° C. and at 4.6 V.
8. The method according to claim 1 , wherein the magnesium source is for reducing a difference in the positions of CoO 2 layers.
9. The method according to claim 1 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when charged with a lithium metal counter electrode,
wherein the charging is performed at 25° C. by CCCV charge,
wherein the CCCV charge is performed at a current value of 0.5 C and a voltage of 4.6 V with a termination current of 0.01 C, and
wherein 1 C is set to 137 mA/g.
10. The method according to claim 9 ,
wherein, for the charging, 1 mol/L lithium hexafluorophosphate is used as an electrolyte, a mixture of ethylene carbonate and diethyl carbonate at a volume ratio of 3:7 and vinylene carbonate at 2 wt % is used as an electrolyte solution, and 25-μm-thick polypropylene is used as a separator.
11. The method according to claim 1 , wherein the surface portion of the positive electrode active material is a region from a surface of the positive electrode active material to a depth of 10 nm.
12. The method according to claim 1 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, lithium fluoride is used as the lithium source and the fluorine source, and magnesium oxide is used as the magnesium source.
13. The method according to claim 1 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, lithium fluoride is used as the lithium source and the fluorine source, and magnesium fluoride is used as the magnesium source and the fluorine source.
14. The method according to claim 1 ,
wherein fluorine of the fluorine source is segregated at the surface portion of the positive electrode active material by the second heating on the composite oxide.
15. The method according to claim 1 ,
wherein the compound comprising lithium and fluorine comprises lithium fluoride.
16. A method for manufacturing a lithium-ion secondary battery comprising a positive electrode which includes a positive electrode active material, a negative electrode, and an electrolyte, the method comprising the steps of:
mixing a lithium source, a cobalt source, a magnesium source, and a fluorine source to form a mixture;
performing a first heating on the mixture to form a composite oxide; and
performing a second heating on the composite oxide at a temperature higher than or equal to 700° C. and lower than or equal to 920° C. so that magnesium of the magnesium source is segregated at a surface portion of the positive electrode active material,
wherein the temperature of the second heating is lower than a temperature of the first heating, and
wherein the mixture comprises a magnesium compound and a compound comprising lithium and fluorine.
17. The method according to claim 16 , wherein the magnesium compound comprises magnesium oxide.
18. The method according to claim 16 , wherein the magnesium compound comprises magnesium fluoride.
19. The method according to claim 16 , wherein the temperature of the first heating is higher than or equal to 800° C. and lower than 1100° C.
20. The method according to claim 16 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line in a charged state, and
wherein the positive electrode active material has a property that the positive electrode active material comprises an O3 crystal structure in a discharged state.
21. The method according to claim 16 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when a charged depth is 0.8 or greater, and
wherein the positive electrode active material has a property that the positive electrode active material comprises an O3 crystal structure when a charge depth is 0.06 or less.
22. The method according to claim 16 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when charged with a lithium metal counter electrode at 25° C. and at 4.6 V.
23. The method according to claim 16 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when charged with a lithium metal counter electrode,
wherein the charging is performed at 25° C. by CCCV charge,
wherein the CCCV charge is performed at a current value of 0.5C and a voltage of 4.6 V with a termination current of 0.01 C, and
wherein 1 C is set to 137 mA/g.
24. The method according to claim 23 ,
wherein, for the charging, 1 mol/L lithium hexafluorophosphate is used as an electrolyte, a mixture of ethylene carbonate and diethyl carbonate at a volume ratio of 3:7 and vinylene carbonate at 2 wt % is used as an electrolyte solution, and 25-μm-thick polypropylene is used as a separator.
25. The method according to claim 16 , wherein the surface portion of the positive electrode active material is a region from a surface of the positive electrode active material to a depth of 10 nm.
26. The method according to claim 16 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, lithium fluoride is used as the lithium source and the fluorine source, and magnesium oxide is used as the magnesium source.
27. The method according to claim 16 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, lithium fluoride is used as the lithium source and the fluorine source, and magnesium fluoride is used as the magnesium source and the fluorine source.
28. The method according to claim 16 ,
wherein fluorine of the fluorine source is segregated at the surface portion of the positive electrode active material by the second heating on the composite oxide.
29. The method according to claim 16 ,
wherein the compound comprising lithium and fluorine comprises lithium fluoride.
30. A method for manufacturing a lithium-ion secondary battery, the lithium-ion secondary battery comprising a positive electrode, a negative electrode, and an electrolyte, the method comprising the steps of:
forming a mixture by mixing a lithium source, a cobalt source, a magnesium source, and a fluorine source;
performing a first heating on the mixture to form a lithium cobalt oxide comprising magnesium and fluorine,the first heating is performed at a temperature higher than or equal to 800° C. and lower than 1100° C.;
coating a surface of the lithium cobalt oxide with a material comprising at least one of aluminum and titanium; and
performing a second heating on the coated lithium cobalt oxide to form a positive electrode active material, the second heating performed at a temperature higher than or equal to 700° C. and less than or equal to 920° C.,
wherein the mixture comprises a magnesium compound and a compound comprising lithium and fluorine,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when charged with a lithium metal counter electrode,
wherein the charging is performed at 25° C. by CCCV charge,
wherein the CCCV charge is performed at a current value of 0.5 C and a voltage of 4.6 V with a termination current of 0.01 C, and
wherein 1 C is set to 137 mA/g.
31. The method according to claim 30 , wherein a peak of an aluminum concentration is in a region deeper than a peak of a magnesium concentration.
32. The method according to claim 30 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, the lithium fluoride is used as the lithium source and the fluorine source, and magnesium oxide is used as the magnesium source.
33. The method according to claim 30 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, lithium fluoride is used as the lithium source and the fluorine source, and magnesium fluoride is used as the magnesium source and the fluorine source.
34. The method according to claim 30 ,
wherein, for the charging, 1 mol/L lithium hexafluorophosphate is used as an electrolyte, a mixture of ethylene carbonate and diethyl carbonate at a volume ratio of 3:7 and vinylene carbonate at 2 wt % is used as an electrolyte solution, and 25-μm-thick polypropylene is used as a separator.
35. The method according to claim 30 ,
wherein the compound comprising lithium and fluorine comprises lithium fluoride.
36. A method for manufacturing a lithium-ion secondary battery comprising a positive electrode which includes a positive electrode active material, a negative electrode, and an electrolyte, the method comprising the steps of:
mixing a lithium source, a cobalt source, a magnesium source, and a fluorine source to form a mixture;
performing a first heating on the mixture to form a composite oxide; and
performing a second heating on the composite oxide,
wherein a temperature of the second heating is lower than a temperature of the first heating,
wherein the positive electrode active material comprises a crystal grain boundary,
wherein magnesium of the magnesium source is segregated at the crystal grain boundary and a vicinity of the crystal grain boundary, and
wherein the mixture comprises a magnesium compound and a compound comprising lithium and fluorine.
37. The method according to claim 36 , wherein the magnesium compound comprises magnesium oxide.
38. The method according to claim 36 , wherein the magnesium compound comprises magnesium fluoride.
39. The method according to claim 36 , wherein the temperature of the first heating is higher than or equal to 800° C. and lower than 1100° C.
40. The method according to claim 36 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line in a charged state, and
wherein the positive electrode active material has a property that the positive electrode active material comprises an O3 crystal structure in a discharged state.
41. The method according to claim 36 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when a charged depth is 0.8 or greater, and
wherein the positive electrode active material has a property that the positive electrode active material comprises an O3 crystal structure when a charge depth is 0.06 or less.
42. The method according to claim 36 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when charged with a lithium metal counter electrode at 25° C. and at 4.6 V.
43. The method according to claim 36 ,
wherein the positive electrode active material has a property that an X-ray diffraction pattern of the positive electrode active material has at least a first diffraction peak at 2θ of 19.30±0.20° and a second diffraction peak at 2θ of 45.55±0.10°, as analyzed by powder X-ray diffraction with a CuKα1 line when charged with a lithium metal counter electrode,
wherein the charging is performed at 25° C. by CCCV charge,
wherein the CCCV charge is performed at a current value of 0.5 C and a voltage of 4.6 V with a termination current of 0.01 C, and
wherein 1C is set to 137 mA/g.
44. The method according to claim 43 ,
wherein, for the charging, 1 mol/L lithium hexafluorophosphate is used as an electrolyte, a mixture of ethylene carbonate and diethyl carbonate at a volume ratio of 3:7 and vinylene carbonate at 2 wt % is used as an electrolyte solution, and 25-μm-thick polypropylene is used as a separator.
45. The method according to claim 36 , wherein the vicinity of the crystal grain boundary is a region 10 nm from the crystal grain boundary.
46. The method according to claim 36 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, lithium fluoride is used as the lithium source and the fluorine source, and magnesium oxide is used as the magnesium source.
47. The method according to claim 36 , wherein lithium carbonate is used as the lithium source, cobalt oxide is used as the cobalt source, lithium fluoride is used as the lithium source and the fluorine source, and magnesium fluoride is used as the magnesium source and the fluorine source.
48. The method according to claim 36 ,
wherein the compound comprising lithium and fluorine comprises lithium fluoride.