IP Library Patent Application 18322010
Patent Application
App. No. 18/322,010

TERNARY PRECURSOR AND PREPARATION METHOD THEREFOR, TERNARY POSITIVE ELECTRODE MATERIAL, AND ELECTRIC APPARATUS

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Patent No.
US None
App. No.
18/322,010
Abstract

This application relates to a ternary precursor for making a material for positive electrodes in lithium batteries. In the ternary precursor, primary particles or whiskers of the ternary precursor are distributed in a radial direction. A deformation stacking fault probability f D of the ternary precursor is ≤2.5%. This application further relates to a preparation method of the ternary precursor, a ternary positive electrode material, a secondary battery, a battery module, a battery pack, and an electric apparatus.

Claims (33)

1 . A ternary precursor, wherein primary particles or whiskers of the ternary precursor are distributed in a radial direction; and

a deformation stacking fault probability f D of the ternary precursor is ≤2.5%, and the deformation stacking fault probability f D is calculated as follows:

f D =0.1552× B (101)−0.03233× B (102)−0.4399/ D (001),

where B(101) is a full width at half maximum in an X-ray diffraction pattern of a (101) crystal plane of the ternary precursor, B(102) is a full width at half maximum in an X-ray diffraction pattern of a (102) crystal plane of the ternary precursor, and D(001) is a full width at half maximum in an X-ray diffraction pattern of a (001) crystal plane of the ternary precursor, where the full widths at half maximum are measured in degrees.

2 . The ternary precursor according to claim 1 , wherein the ternary precursor comprises an inner core and a shell enclosing the inner core, a radius R of the inner core is 0.1-6.0 μm, and a thickness h of the shell is 2-10 μm.

3 . The ternary precursor according to claim 2 , wherein a molecular formula of the inner core is [Ni x Co y Mn (1-x-y) ](OH) 2 , wherein 0.8≤x<1.0, 0<y<0.2, and x+y<1;

a molecular formula of the shell is [Ni a Co b Mn (1-a-b) ](OH) 2 , wherein 0.8≤a<1.0, 0<b<0.2, and a+b<1; and

Ni contents in the inner core and the shell make the following relationship hold: a≤x.

4 . The ternary precursor according to claim 1 , wherein a volume distribution span of particles of the ternary precursor is (D v 90−D v 10)/D v 50≥1.3.

5 . The ternary precursor according to according to claim 1 , wherein a volume-based median particle size D v 50 of particles of the ternary precursor is 5-15 μm.

6 . The ternary precursor according to according to claim 1 , wherein a specific surface area BET of particles of the ternary precursor is 5-20 m 2 /g.

7 . The ternary precursor according to claim 1 , wherein a tap density (TD) of particles of the ternary precursor is ≥1.9 g/cm 3 .

8 . The ternary precursor according to claim 1 , wherein a cracking rate of particles of the ternary precursor is ≤20% at a pressure of 5 tons, wherein an expression of the cracking rate is α=[D v 1 (before compression)−D v 1 (after compression)]/D v 1 (before compression),

wherein D v 1 (before compression) is a particle size at which cumulative distribution by volume of the ternary precursor before compression reaches 1% as counted from the small particle size side, measured in μm, and

D v 1 (after compression) is a particle size at which cumulative distribution by volume of the ternary precursor after compression reaches 1% as counted from the small particle size side, measured in μm.

9 . The ternary precursor according to claim 1 , wherein the ternary precursor is doped with element M, the element M is one or more of Zr, W, Al, Sr, Ti, Ca, Sb, Mg, Zn, Te, and Fe.

10 . A preparation method of ternary precursor, comprising:

providing a first mixed nickel-cobalt-manganese metal salt solution and a second mixed nickel-cobalt-manganese metal salt solution;

adding a first base solution having a first pH value and a first ammonia concentration to a first reactor, and adding the first mixed nickel-cobalt-manganese metal salt solution, an alkali solution, and ammonia to the first reactor to maintain the pH value and the ammonia concentration unchanged, so as to form a seed crystal slurry of ternary precursor; and

adding water as a base solution to a second reactor, adding the seed crystal slurry of ternary precursor to adjust the base solution to a second pH value and a second ammonia concentration, and adding the second mixed nickel-cobalt-manganese metal salt solution, an alkali solution, ammonia, and the seed crystal slurry of ternary precursor to the second reactor to maintain the pH value and the ammonia concentration unchanged, so as to form a ternary precursor;

wherein primary particles or whiskers of the ternary precursor are distributed in a radial direction; and a deformation stacking fault probability f D of the ternary precursor is ≤2.5%, and the deformation stacking fault probability f D is calculated as follows:

f D =0.1552× B (101)−0.03233× B (102)−0.4399/ D (001),

where B(101) is a full width at half maximum in an X-ray diffraction pattern of a (101) crystal plane of the ternary precursor, B(102) is a full width at half maximum in an X-ray diffraction pattern of a (102) crystal plane of the ternary precursor, and D(001) is a full width at half maximum in an X-ray diffraction pattern of a (001) crystal plane of the ternary precursor, where the full widths at half maximum are measured in degrees.

11 . The method according to claim 10 , wherein a molar ratio of nickel, cobalt, and manganese in the first mixed nickel-cobalt-manganese metal salt solution is x:y:(1−x−y), wherein 0.8≤x<1.0, 0<y<0.2, and x+y<1; and a molar ratio of nickel, cobalt, and manganese in the second mixed nickel-cobalt-manganese metal salt solution is a:b:(1−a−b), wherein 0.8≤a<1.0, 0<b<0.2, a+b<1, and a≤x.

12 . The method according to claim 10 , wherein the first pH value is 11.5-12.5; and the first ammonia concentration is 0.2-0.6 mol/L.

13 . The method according to claim 10 , wherein the second pH value is 11.0-12.0; and the second ammonia concentration is 0.2-0.6 mol/L.

14 . The method according to claim 10 , wherein a solid-liquid ratio of the seed crystal slurry of ternary precursor in the second reactor is 0.1-0.2.

15 . The method according to according to claim 10 , wherein a volume-based median particle size D v 50 of the seed crystal slurry of ternary precursor is 1-5 μm; and a volume-based median particle size D v 50 of the ternary precursor is 5-15 μm.

16 . A ternary positive electrode material, made of the ternary precursor according to claim 1 .

17 . The ternary positive electrode material according to claim 16 , wherein the ternary positive electrode material comprises secondary particles formed by aggregation of a plurality of primary particles, wherein the plurality of primary particles are arranged in a radial direction of the secondary particles.

18 . The ternary positive electrode material according to claim 16 , wherein a volume-based median particle size D v 50 of the ternary positive electrode material is 5-15 μm.

19 . A secondary battery, comprising the ternary positive electrode material according to claim 16 .

20 . A battery module, comprising the secondary battery according to claim 19 .

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2024
From: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
To: CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
Reel/Frame 068338/0402 →
CONFIDENTIALITY AND NON-COMPETE AGREEMENT Recorded Jan 25, 2024
From: ZHAO, YUXIANG
To: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
Reel/Frame 066372/0398 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 23, 2023
From: WU, QI; SHEN, CHONGHENG; CHEN, QIANG; FAN, JINGPENG; HUANG, QISEN
To: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
Reel/Frame 063729/0635 →