IP Library › Granted Patent US 10,116,002
Granted Patent B2
US 10,116,002 · App. 14/893,424 · Granted Oct 30, 2018

Production method of solid electrolyte

Inventors: Koichi Sato (Sodegaura, JP); Minoru Senga (Sodegaura, JP); Yoshikatsu Seino (Sodegaura, JP)
Assignee: IDEMITSU KOSAN CO., LTD.
H01M10/0562C01B17/22H01B1/10H01M10/052H01M10/0525C01P2004/61C01P2006/12C01P2006/14C01P2006/80H01M2220/20H01M2220/30H01M2300/0068Y02T10/7011
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Quick Facts
Patent No.
US 10,116,002
App. No.
14/893,424
Granted
Oct 30, 2018
Kind
B2
Abstract

A method of producing a sulfide-based solid electrolyte including bringing an alkali metal sulfide and a sulfur compound into contact in a mixed solvent of a hydrocarbon solvent and a polar aprotic solvent.

Claims (24)

1. A method of producing a sulfide-based solid electrolyte comprising:

contacting an alkali metal sulfide with a sulfur compound without pulverizing in a mixed solvent of an aromatic hydrocarbon solvent and a polar aprotic solvent, wherein:

the polar aprotic solvent is at least one of an ether solvent and a nitrile solvent, and a volume ratio of the aromatic hydrocarbon solvent to the polar aprotic solvent (aromatic hydrocarbon solvent: polar aprotic solvent) is 95:5 to 5:95.

2. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the aromatic hydrocarbon solvent is an aromatic hydrocarbon solvent represented by the following formula (1):

Ph-(R) n   (1)

wherein Ph is an aromatic hydrocarbon group, R is an alkyl group, and n is an integer selected from 1 to 5.

3. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the polar aprotic solvent is an ether solvent.

4. The method of producing a sulfide-based solid electrolyte according to claim 3 , wherein the alkali metal sulfide is lithium sulfide.

5. The method of producing a sulfide-based solid electrolyte according to claim 4 , wherein the sulfur compound is phosphorous sulfide.

6. The method for producing a sulfide-based solid electrolyte according to claim 4 , wherein the sulfur compound is phosphorous pentasulfide, and the alkali metal sulfide and the sulfur compound are brought into contact at a molar ratio of 74:26 to 76:24.

7. The method for producing a sulfide-based solid electrolyte according to claim 3 , wherein the alkali metal sulfide and the sulfur compound are brought into contact at a molar ratio of 74:26 to 76:24.

8. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the alkali metal sulfide is lithium sulfide.

9. The method of producing a sulfide-based solid electrolyte according to claim 8 , wherein the sulfur compound is phosphorous sulfide.

10. The method for producing a sulfide-based solid electrolyte according to claim 1 , wherein the alkali metal sulfide and the sulfur compound are brought into contact at a molar ratio of 74:26 to 76:24.

11. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the contacting is carried out at a temperature of 20° C. or higher and 60° C. or lower.

12. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the aromatic hydrocarbon solvent is toluene, xylene, or ethylbenzene.

13. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the polar aprotic solvent comprises an ether solvent selected from anisole, diethoxyethane, diethyl ether, and tetrahydrofuran.

14. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the polar aprotic solvent comprises a cyclic ether solvent.

15. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the polar aprotic solvent comprises tetrahydrofuran.

16. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein the polar aprotic solvent comprises isobutyronitrile or acetonitrile.

17. The method of producing a sulfide-based solid electrolyte according to claim 1 , wherein contacting the alkali metal sulfide with the sulfur compound comprises contacting the alkali metal sulfide, the sulfur compound, and a halogen compound.

18. The method of producing a sulfide-based solid electrolyte according to claim 1 , further comprising drying a reaction product obtained by contacting the alkali metal sulfide with the sulfur compound to remove the mixed solvent.

19. The method of producing a sulfide-based solid electrolyte according to claim 1 , further comprising crystallizing a reaction product obtained by contacting the alkali metal sulfide with the sulfur compound by a heat treatment.

20. The method of producing a sulfide-based solid electrolyte according to claim 1 , further comprising drying and crystallizing a reaction product obtained by contacting the alkali metal sulfide with the sulfur compound in one heating step.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 23, 2015
From: SATO, KOICHI; SENGA, MINORU; SEINO, YOSHIKATSU
To: IDEMITSU KOSAN CO., LTD.
Reel/Frame 037121/0871 →
Priority Claims (2)
JP 2013-115223 · May 31, 2013 · national
JP 2014-006012 · Jan 16, 2014 · national
Continuity (1)
Related Publication 20160104917A1 · Apr 14, 2016
Cited By (1)
US 12,731,814