IP Library Granted Patent US 10,249,876
Granted Patent B2
US 10,249,876 · App. 15/874,123 · Granted Apr 2, 2019

Lithium-ion secondary battery and electronic device

Inventors: Takahiro Kawakami (Kanagawa, JP); Tatsuya Ikenuma (Kanagawa, JP); Teruaki Ochiai (Kanagawa, JP); Shuhei Yoshitomi (Kanagawa, JP); Mako Motoyoshi (Kanagawa, JP); Hiroyuki Miyake (Kanagawa, JP); Yohei Momma (Kanagawa, JP); Takuya Hirohashi (Kanagawa, JP); Satoshi Seo (Kanagawa, JP)
Assignee: Semiconductor Energy Laboratory Co., Ltd.
H01M4/485G04C10/00G04G21/00G06F1/16G06F1/163G06F1/1626G06F1/1635G06F1/1652H01M4/483H01M4/505H01M4/583H01M4/623H01M4/625H01M4/366H01M4/525H01M10/052H01M2220/30
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Quick Facts
Patent No.
US 10,249,876
App. No.
15/874,123
Granted
Apr 2, 2019
Kind
B2
Abstract

A lithium-ion secondary battery with high capacity is provided. Alternatively, a lithium-ion secondary battery with unproved cycle characteristics is provided. To achieve this, an active material including a particle having a cleavage plane and a layer containing carbon covering at least part of the cleavage plane is provided. The particle having the cleavage plane contains lithium, manganese, nickel, and oxygen. The layer containing carbon preferably contains graphene. When a lithium-ion secondary battery is fabricated using an electrode including the particle having the cleavage plane at least part of which is covered with the layer containing carbon as an active material, the discharge capacity can be increased and the cycle characteristics can be improved.

Claims (37)

1. A method for forming an active material, comprising the steps of:

forming a mixture of a lithium compound, a manganese compound, and a nickel compound;

heating the mixture and obtaining a secondary particle composed of sintered primary particles;

crushing the secondary particle into a plurality of particles; and

coating the plurality of particles with a layer comprising graphene,

wherein a first cleavage plane of a first particle in the plurality of particles is covered with the layer comprising graphene,

wherein the first cleavage plane is formed by the crushing step,

wherein a second cleavage plane of a second particle in the plurality of particles is covered with the layer comprising graphene, and

wherein the first particle and the second particle are bound with graphene.

2. The method for forming the active material according to claim 1 , wherein the heating step is performed at higher than or equal to 800° C. and lower than or equal to 1000° C.

3. The method for forming the active material according to claim 2 , wherein the crushing step is performed using a bead mill.

4. The method for forming the active material according to claim 3 , wherein a particle size of the plurality of particles is substantially the same as a particle size of the sintered primary particles.

5. A method for forming an active material, comprising the steps of:

forming a mixture of a lithium compound and a cobalt compound;

heating the mixture and obtaining a secondary particle composed of sintered primary particles;

crushing the secondary particle into a plurality of particles; and

coating the plurality of particles with a layer comprising graphene,

wherein a first cleavage plane of a first particle in the plurality of particles is covered with the layer comprising graphene,

wherein the first cleavage plane is formed by the crushing step,

wherein a second cleavage plane of a second particle in the plurality of particles is covered with the layer comprising graphene, and

wherein the first particle and the second particle are bound with graphene.

6. The method for forming the active material according to claim 5 , wherein the heating step is performed at higher than or equal to 800° C. and lower than or equal to 1000° C.

7. The method for forming the active material according to claim 5 , wherein the crushing step is performed using a bead mill.

8. The method for forming the active material according to claim 5 , wherein a particle size of the plurality of particles is substantially the same as a particle size of the sintered primary particles.

9. A method for forming an active material, comprising the steps of:

forming a mixture of a lithium compound, a manganese compound, and a nickel compound;

heating the mixture and obtaining a secondary particle composed of sintered primary particles;

crushing the secondary particle into a plurality of particles;

kneading the plurality of particles and graphene oxide;

reducing the graphene oxide on the plurality of particles and coating the plurality of particles with a layer comprising graphene,

wherein a first cleavage plane of a first particle in the plurality of particles is covered with the layer comprising graphene,

wherein the first cleavage plane is formed by the crushing step,

wherein a second cleavage plane of a second particle in the plurality of particles is covered with the layer comprising graphene, and

wherein the first particle and the second particle are bound with graphene.

10. The method for forming the active material according to claim 9 , wherein the heating step is performed at higher than or equal to 800° C. and lower than or equal to 1000° C.

11. The method for forming the active material according to claim 9 , wherein the crushing step is performed using a bead mill.

12. The method for forming the active material according to claim 9 , wherein a particle size of the plurality of particles is substantially the same as a particle size of the sintered primary particles.

Priority Claims (3)
JP 2014-097946 · May 9, 2014 · national
JP 2014-105515 · May 21, 2014 · national
JP 2014-219383 · Oct 28, 2014 · national
Continuity (2)
Continuation 14704508 · May 5, 2015
Related Publication 20180175386A1 · Jun 21, 2018
Cited By (2)
US 12,370,923 US 12,418,021