IP Library Granted Patent US 12683151
Granted Patent B2
US 12683151 · App. 17/551,753 · Granted Jul 14, 2026

Solid electrolyte coating of lithium-doped silicon oxide particles as anode active material

Inventors: Bradley R. Frieberg (Farmington Hills, MI); Zhongyi Liu (Troy, MI); Xiaosong Huang (Novi, MI); Mark W. Verbrugge (Troy, MI); Zhe Li (Shanghai, CN)
Assignee: GM GLOBAL TECHNOLOGY OPERATIONS LLC
H01M4/386H01M4/134H01M4/1395H01M10/0525H01M2300/0071
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Quick Facts
Patent No.
US 12683151
App. No.
17/551,753
Granted
Jul 14, 2026
Kind
B2
Abstract

An anode material includes a plurality of negative solid-state electroactive particles. Each of the plurality of negative solid-state electroactive particles may include a lithium-doped silicon oxide and a solid electrolyte coating at least substantially continuously disposed over substantially all of the surface of the lithium-doped silicon oxide.

Claims (24)

1 . An anode material comprising a plurality of negative solid-state electroactive particles, each of the plurality of negative solid-state electroactive particles consisting of:

a lithium-doped silicon oxide comprising Li y SiO x , y≤4, 0≤x≤2; and

a solid electrolyte coating comprising Li 3 PS 4 or Li 7−m PS 6−m X, where 0≤m≤1and where X is chlorine (Cl), bromine (Br), or iodine (I);

wherein the solid electrolyte coating has a thickness of about 20 nm to about 350 nm.

2 . The anode material of claim 1 , wherein the solid electrolyte coating is substantially continuously disposed over substantially all of the surface of the lithium-doped silicon oxide.

3 . The anode material of claim 1 , wherein the solid electrolyte coating has a thickness from about 50 nm to about 100 nm.

4 . The anode material of claim 1 , further comprising a carbon-based material.

5 . A method of preparing the anode material of claim 1 , the method comprising:

preparing a solid electrolyte precursor solution, the solid electrolyte precursor solution comprising a solid electrolyte precursor and a solvent; and

contacting a plurality of lithium-doped silicon oxide particles with the solid electrolyte precursor solution to form a solid electrolyte coating.

6 . The method of claim 5 , wherein the solid electrolyte precursor comprises P 4 S 16 , and wherein the solvent comprises n-methyl-2-pyrrolidone (NMP).

7 . The method of claim 5 , wherein the solid electrolyte precursor comprises Li 7−m PS 6−m X, where 0≤m≤1 and where X is chlorine (Cl), bromine (Br), or iodine (I), wherein the solvent comprises an ester and an alcohol as co-solvents.

8 . The method of claim 5 , wherein the silicon oxide is a lithium-doped silicon oxide when the silicon oxide is contacted with the solid electrolyte precursor solution.

9 . The method of claim 5 , wherein the silicon oxide is a non-lithiated silicon oxide when the silicon oxide is contacted with the solid electrolyte precursor solution, and further comprising lithiating the silicon oxide after the solid electrolyte coating is formed.

10 . The method of claim 5 , wherein contacting the plurality of silicon oxide particles with the solid electrolyte precursor solution comprises immersing the silicon oxide particles in the solid electrolyte precursor solution.

11 . An anode comprising:

a plurality of negative solid-state electroactive particles, each of the plurality of negative solid-state electroactive particles comprising:

a lithium-doped silicon oxide; and

a solid electrolyte coating, wherein the solid electrolyte coating has a thickness from about 20 nm to about 350 nm; and

a plurality of solid-state electrolyte particles consisting of a solid-state electrolyte; wherein the plurality of negative solid-state electroactive particles is present in an amount of greater than or equal to about 30 wt. % to less than or equal to about 98 wt. % and the plurality of solid-state electrolyte particles is present in an amount of greater than or equal to about 5 wt. % to less than or equal to about 20 wt. %.

12 . The anode of claim 11 , wherein the lithium-doped silicon oxide comprises Li y SiO x , y≤4, 0≤x≤2.

13 . The anode of claim 11 , wherein the solid electrolyte coating comprises Li 3 PS 4 .

14 . The anode of claim 11 , wherein the solid electrolyte coating comprises Li 7−m PS 6−m X, where 0≤m≤1 and where X is chlorine (Cl), bromine (Br), or iodine (I).

15 . The anode of claim 11 , wherein the solid electrolyte coating is substantially continuously disposed over substantially all of the surface of the lithium-doped silicon oxide.