IP Library Granted Patent US 12,315,876
Granted Patent B2
US 12,315,876 · App. 17/453,930 · Granted May 27, 2025

Sulfide-based solid electrolyte particles

Inventors: Tsukasa Takahashi (Ageo, JP); Takashi Chikumoto (Ageo, JP); Takahiro Ito (Ageo, JP)
Assignee: Mitsui Mining & Smelting Co., Ltd.
H01M10/0562H01B1/10H01M4/13H01M10/052H01M10/0525H01M2004/027H01M2004/028
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Quick Facts
Patent No.
US 12,315,876
App. No.
17/453,930
Granted
May 27, 2025
Kind
B2
Abstract

A sulfide-based solid electrolyte particle having a crystal phase of a cubic argyrodite-type crystal structure composed of Li, P, S and a halogen (Ha), wherein good contact between the sulfide-based solid electrolyte particles and positive or negative electrode active material particles is secured and improvements in the rate characteristic and the cycle characteristic are attained. The ratio (Z Ha2 /Z Ha1 ) of an element ratio Z Ha2 of the halogen (Ha) at the position of 5 nm in depth from the particle surface to an element ratio Z Ha1 of the halogen (Ha) at the position of 100 nm in depth from the particle surface is 0.5 or lower and the ratio (Z O2 /Z A2 ) of an element ratio Z O2 of oxygen to the total Z A2 of element ratios of P, S, O, and the halogen (Ha) at the position of 5 nm in depth from the particle surface is 0.5 or higher, as measured by XPS.

Claims (15)

1. A sulfide-based solid electrolyte particle, comprising a crystal phase of a cubic argyrodite-type crystal structure comprising lithium (Li), phosphorus (P), sulfur(S) and a halogen (Ha),

wherein the halogen (Ha) includes Cl and Br,

represented by Li 7−x PS 6−x Cl y Br z and satisfying x=y+z and x=1.0−1.8,

a ratio (Z Ha2 /Z Ha1 ) of an element ratio Z Ha2 of the halogen (Ha) at a position, in terms of an SiO 2 sputter rate, of 5 nm in depth from the particle surface to an element ratio Z Ha1 of the halogen (Ha) at a position, in terms of the SiO 2 sputter rate, of 100 nm in depth from the particle surface is 0.5 or lower, as measured by X-ray photoelectron spectroscopy (XPS), and

a ratio (Z O2 /Z A2 ) of an element ratio Z O2 of oxygen to a total Z A2 of element ratios of phosphorus (P), sulfur(S), oxygen (O) and the halogen (Ha) at the position, in terms of the SiO 2 sputter rate, of 5 nm in depth from the particle surface is 0.5 or higher, as measured by XPS.

2. The sulfide-based solid electrolyte particle according to claim 1 , wherein a ratio (Z Ha2 /Z A2 ) of an element ratio Z Ha2 of the halogen (Ha) to a total Z A2 of element ratios of phosphorus (P), sulfur(S), oxygen (O) and the halogen (Ha) at the position, in terms of SiO 2 sputter rate, of 5 nm in depth from the particle surface is 0.1 or lower.

3. The sulfide-based solid electrolyte particle according to claim 1 , wherein a ratio (Z Ha1 /Z A1 ) of an element ratio Z Ha1 of the halogen (Ha) to a total Z A1 of element ratios of phosphorus (P), sulfur(S), oxygen (O) and the halogen (Ha) at the position, in terms of SiO 2 sputter rate, of 100 nm in depth from the particle surface is 0.03 to 0.3, as measured by XPS.

4. The sulfide-based solid electrolyte particle according to claim 2 , wherein a ratio (Z Ha1 /Z A1 ) of an element ratio Z Ha1 of the halogen (Ha) to a total Z A1 of element ratios of phosphorus (P), sulfur(S), oxygen (O) and the halogen (Ha) at the position, in terms of SiO 2 sputter rate, of 100 nm in depth from the particle surface is 0.03 to 0.3, as measured by XPS.

5. An electrode material for a lithium secondary battery, comprising: a sulfide-based solid electrolyte particle according to claim 1 ; and a positive electrode active material and/or a negative electrode active material.

6. A lithium secondary battery, having a layer comprising a sulfide-based solid electrolyte particle according to claim 1 .

7. The sulfide-based solid electrolyte particle according to claim 1 , wherein the proportion (z/y) of the molar ratio of Br to the molar ratio of Cl is 0.1 to 10.

8. The sulfide-based solid electrolyte particle according to claim 1 , wherein the proportion (z/y) of the molar ratio of Br to the molar ratio of Cl is 0.3 to 3.

9. The sulfide-based solid electrolyte particle according to claim 1 , wherein the total molar ratio of Cl and Br is higher than 1.0 and 1.8 or lower.

10. The sulfide-based solid electrolyte particle according to claim 1 , wherein the total molar ratio of Cl and Br is higher than 1.2 and 1.6 or lower.

11. The sulfide-based solid electrolyte particle according to claim 1 , wherein D 50 in a volume particle size distribution obtained by a laser diffraction scattering particle size distribution measurement method is 0.1 μm to 10 μm.

Assignments (2)
CHANGE OF NAME Recorded Mar 31, 2026
From: MITSUI MINING AND SMELTING COMPANY, LIMITED
To: MITSUI KINZOKU COMPANY, LIMITED
Reel/Frame 075357/0342 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2021
From: TAKAHASHI, TSUKASA; CHIKUMOTO, TAKASHI; ITO, TAKAHIRO
To: MITSUI MINING & SMELTING CO., LTD.
Reel/Frame 058050/0366 →
Priority Claims (1)
JP 2018-044210 · Mar 12, 2018 · national
Continuity (2)
Continuation 16979920
Related Publication 20220059870A1 · Feb 24, 2022
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