Positive active material and electrochemical device
A positive active material, comprising a lithium transition metal composite oxide containing Co and R elements and an M element. The lithium transition metal composite oxide has a P6 3 mc crystal structure. The M element includes at least one of Al, Mg, Ti, Mn, Fe, Ni, Zn, Cu, Nb, Cr, Y, or Zr. The R element includes at least one of F or Cl. A molar content of the R element is n R , a sum of a molar content of the Co element and a molar content of the M element is n Co+M , and a ratio δ of n R to n Co+M is 0<δ≤0.01. The crystal structure of the positive active material according to this application is highly stable, thereby improving cycle performance and thermal stability of the electrochemical device.
1 . A positive active material, comprising: a lithium transition metal composite oxide containing Co and R elements and an M element; the lithium transition metal composite oxide has a P6 3 mc crystal structure;
wherein the M element comprises at least one of Al, Mg, Ti, Mn, Fe, Ni, Zn, Cu, Nb, Cr, Y, or Zr;
the R element comprises at least one of F or Cl;
a molar content of the R element is n R , a sum of a molar content of the Co element and a molar content of the M element is n Co+M , and a ratio δ of n R to n Co+M is 0<δ≤0.01.
2 . The positive active material according to claim 1 , wherein the positive active material satisfies at least one of the following conditions:
a. the positive active material further comprises a Li element, a molar content of the Li element is n Li , and a ratio x of n Li to n Co+M is 0.6<x<0.95;
b. the positive active material further comprises an Na element, a molar content of the Na element is n Na , and a ratio z of n Na to n Co+M is 0<z<0.03; and
c. the molar content of the M element is n M , a ratio y of n M to n Co+M is 0≤y<0.15, the molar content of the Co element is n Co , and a ratio of n Co to n Co+M is 1-y.
3 . The positive active material according to claim 2 , wherein a chemical general formula of the positive active material is Li x Na z Co 1-y M y O 2-δ R δ , wherein 0.6<x<0.95, 0≤y<0.15, 0≤z<0.03, and 0<δ≤0.01.
4 . The positive active material according to claim 1 , wherein as analyzed using X-ray photoelectron spectroscopy, an XPS spectrum of the positive active material contains an O1s peak in a range of 530 eV to 535 eV.
5 . The positive active material according to claim 1 , wherein a ratio of electronegativity of an M element cation to electronegativity of a Co element cation is 1 to 2.
6 . The positive active material according to claim 5 , wherein the ratio of electronegativity of an M element cation to electronegativity of a Co element cation is 1.05 to 1.64.
7 . The positive active material according to claim 1 , wherein
a concentration of the R element on a surface of the positive active material is higher than the concentration of the R element inside the positive active material, wherein the concentration of the R element is the ratio of n R to n Co+M .
8 . The positive active material according to claim 7 , wherein a ratio of the concentration of the R element in a region from the surface of the positive active material to a depth of 50 nm to the concentration of the R element in other regions of the positive active material is (1 to 10):1.
9 . The positive active material according to claim 8 , wherein an R element concentration difference at any position in the other regions of the positive active material is less than 5%.
10 . The positive active material according to claim 1 , wherein the positive active material satisfies at least one of the following conditions:
d. the positive active material comprises pores and/or gaps;
e. an average particle diameter D v50 of the positive active material is 10 μm to 25 μm; and
f. a specific surface area of the positive active material is 0.1 m 2 /g to 3 m 2 /g.
11 . An electrochemical device, comprising a positive active material layer, wherein the positive active material layer comprises a positive active material, wherein the positive active material comprises a lithium transition metal composite oxide containing Co and R elements and an M element; the lithium transition metal composite oxide has a P6 3 mc crystal structure; wherein the M element comprises at least one of Al, Mg, Ti, Mn, Fe, Ni, Zn, Cu, Nb, Cr, Y, or Zr; the R element comprises at least one of F or Cl; a molar content of the R element is n R , a sum of a molar content of the Co element and a molar content of the M element is n Co+M , and a ratio δ of n R to n Co+M is 0<δ≤0.01.
12 . The electrochemical device according to claim 11 , wherein the positive active material satisfies at least one of the following conditions:
a. the positive active material further comprises a Li element, a molar content of the Li element is n Li , and a ratio x of n Li to n Co+M is 0.6<x<0.95;
b. the positive active material further comprises an Na element, a molar content of the Na element is n Na , and a ratio z of n Na to n Co+M is 0<z<0.03; and
c. the molar content of the M element is n M , a ratio y of n M to n Co+M is 0≤y<0.15, the molar content of the Co element is n Co , and a ratio of n Co to n Co+M is 1-y.
13 . The electrochemical device according to claim 12 , wherein a chemical general formula of the positive active material is Li x Na z Co 1-y M y O 2-δ R δ , wherein 0.6<x<0.95, 0≤y<0.15, 0≤z<0.03, and 0<δ≤0.01.
14 . The electrochemical device according to claim 11 , wherein as analyzed using X-ray photoelectron spectroscopy, an XPS spectrum of the positive active material contains an O1s peak in a range of 530 eV to 535 eV.
15 . The electrochemical device according to claim 11 , wherein a ratio of electronegativity of an M element cation to electronegativity of a Co element cation is 1 to 2.
16 . The electrochemical device according to claim 11 , wherein
a concentration of the R element on a surface of the positive active material is higher than the concentration of the R element inside the positive active material, wherein the concentration of the R element is the ratio of n R to n Co+M .
17 . The electrochemical device according to claim 16 , wherein a ratio of the concentration of the R element in a region from the surface of the positive active material to a depth of 50 nm to the concentration of the R element in other regions of the positive active material is (1 to 10):1.
18 . The electrochemical device according to claim 17 , wherein an R element concentration difference at any position in the other regions of the positive active material is less than 5%.
19 . The electrochemical device according to claim 11 , wherein the positive active material satisfies at least one of the following conditions:
d. the positive active material comprises pores and/or gaps;
e. an average particle diameter D v50 of the positive active material is 10 μm to 25 μm; and
f. a specific surface area of the positive active material is 0.1 m 2 /g to 3 m 2 /g.
20 . The electrochemical device according to claim 11 , wherein when a capacity of the electrochemical device in a fully discharged state is not less than 180 mAh/g, as analyzed by using an X-ray diffraction method, a main peak in an XRD pattern of the positive active material falls within a range of 18° to 19°, and a peak width at half height of the main peak is 0° to 0.5°.