IP Library Patent Application 18140637
Patent Application
App. No. 18/140,637

TERNARY PRECURSOR MATERIAL, AND PREPARATION METHOD AND APPLICATION THEREOF

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Quick Facts
Patent No.
US None
App. No.
18/140,637
Filed
Apr 28, 2023
Art Unit
1729
USPC
429/231.95
Abstract

Embodiments of this application provide a ternary precursor material, a preparation method thereof, and a positive electrode active substance. A ternary precursor material may be provided in this application and may include a core and a shell, wherein (1) the core may have a molecular formula of Ni x Co y Mn 1-x-y (OH) 2±a , where 0.8≤x<1.0, 0<y<0.2, and 0<a<0.2; and the shell may include a doping element; and (2) a deformation stacking fault probability f D of the ternary precursor material may be ≤4%. With use of the positive electrode active substance prepared by sintering the precursor material, secondary batteries have relatively high gram capacity and cycling performance.

Claims (33)

1 . A ternary precursor material, comprising a core and a shell, wherein:

(1) the core has a molecular formula of Ni x Co y Mn 1-x-y (OH) 2±a , wherein 0.8≤x<1.0, 0<y<0.2, and 0<a<0.2; and

the shell comprises a doping element; and

(2) a deformation stacking fault probability f D of the ternary precursor material is ≤4%.

2 . The ternary precursor material according to claim 1 , wherein a breakage rate of particles of the ternary precursor material under a pressure of 1 ton is ≤50%.

3 . The ternary precursor material according to claim 2 , wherein the breakage rate of particles of the ternary precursor material under the pressure of 1 ton is ≤25%.

4 . The ternary precursor material according to claim 1 , wherein the doping element is selected from one or more of tungsten, antimony, tantalum, molybdenum, yttrium, and magnesium; and/or

a mass fraction of the doping element is 1000 ppm to 8000 ppm.

5 . The ternary precursor material according to claim 4 , wherein the mass fraction of the doping element is 2000 ppm to 6000 ppm.

6 . The ternary precursor material according to claim 1 , wherein a diameter of the core is 2 μm to 9 μm; and/or

a thickness of the shell is 0.5 μm to 4 μm.

7 . The ternary precursor material according to claim 1 , wherein a particle size D v 50 of the ternary precursor material is 3 μm to 17 μm; and/or

a granularity SPAN value of the ternary precursor material is ≤0.65.

8 . The ternary precursor material according to claim 7 , wherein the particle size D v 50 of the ternary precursor material is 6 μm to 10 μm; and/or

the granularity SPAN value of the ternary precursor material is ≤0.45.

9 . The ternary precursor material according to claim 1 , wherein a BET of the ternary precursor material is 4 m 2 /g to 16 m 2 /g.

10 . The ternary precursor material according to claim 1 , wherein an intensity ratio of a diffraction peak of 001 crystal plane of the ternary precursor material to a diffraction peak of 101 crystal plane thereof is 0.6 to 1.2.

11 . The ternary precursor material according to claim 1 , wherein a length-width ratio of primary particles of the ternary precursor material is 2 to 8.

12 . A preparation method of ternary precursor material, wherein the method comprises the following steps:

providing a mixed salt solution, an alkali liquor, ammonium hydroxide, and a doping element salt solution, wherein the mixed salt solution comprises soluble nickel salt, cobalt salt, and manganese salt;

adding pure water into a reactor as a base solution, controlling reaction temperature, performing stirring, and pumping the mixed salt solution, the alkali liquor, and the ammonium hydroxide concurrently into the reactor, to obtain a core slurry of the ternary precursor, wherein pH and a working concentration of the ammonium hydroxide remain unchanged; and

pumping the doping element salt solution, the alkali liquor, and the ammonium hydroxide concurrently into the reactor to synthesize a slurry of the ternary precursor, and performing drying and sintering to obtain the ternary precursor material, wherein pH and a working concentration of the ammonium hydroxide remain unchanged;

wherein the ternary precursor material comprises a core and a shell, and the core has a molecular formula of Ni x Co y Mn 1-x-y (OH) 2±a , wherein 0.8≤x<1.0, 0<y<0.2, and 0<a<0.2; and the shell comprises a doping element; and a deformation stacking fault probability f D of the ternary precursor material is ≤4%.

13 . The method according to claim 12 , wherein in the adding step, pH is 9.5 to 10.5, and the working concentration of the ammonium hydroxide is 0.6 mol/L to 1 mol/L; and/or

the reaction temperature is 65° C. to 85° C.; and/or

a stirring speed is 150 rpm to 350 rpm.

14 . The method according to claim 12 , wherein in the pumping step, pH is 9.5 to 10.5, and the working concentration of the ammonium hydroxide is 0.65 mol/L to 0.75 mol/L.

15 . A positive electrode active substance, comprising the ternary precursor material according to claim 1 .

16 . The positive electrode active substance according to claim 15 , wherein a molar ratio of Li/Me is 0.9 to 1.1, and Me is nickel, cobalt, and manganese.

17 . A secondary battery, comprising the positive electrode active substance according to claim 15 .

18 . A battery module, comprising the secondary battery according to claim 17 .

19 . A battery pack, comprising the secondary battery according to claim 17 .

20 . An electric apparatus, comprising the secondary battery according to claim 17 .

Assignments (2)
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 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 28, 2023
From: SHEN, CHONGHENG; WU, QI; HUAN, SHUXING; CHEN, QIANG; LIU, NA
To: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
Reel/Frame 063473/0967 →