IP Library Granted Patent US 11,658,337
Granted Patent B2
US 11,658,337 · App. 17/254,477 · Granted May 23, 2023

Sulfide solid electrolyte and treatment method therefor

Inventors: Masayuki Shibata (Chiba, JP); Hiroaki Yamada (Chiba, JP); Nobuhito Nakaya (Ichihara, JP); Yusuke Iseki (Chiba, JP); Minoru Senga (Sodegaura, JP); Takashi Hayakawa (Chiba, JP); Shogo Shimada (Ichihara, JP); Tomoyuki Okuyama (Ichihara, JP); Koji Kato (Chiba, JP)
Assignee: IDEMITSU KOSAN CO., LTD.
H01M10/0562H01B1/10H01M10/4235H01M2300/008
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Quick Facts
Patent No.
US 11,658,337
App. No.
17/254,477
Granted
May 23, 2023
Kind
B2
Abstract

A sulfide solid electrolyte, which is able to adjust the morphology unavailable traditionally, or is readily adjusted so as to have a desired morphology, the sulfide solid electrolyte having a volume-based average particle diameter measured by laser diffraction particle size distribution measurement of 3 μm or more and a specific surface area measured by the BET method of 20 m2/g or more; and a method of treating a sulfide solid electrolyte including the sulfide solid electrolyte being subjected to at least one mechanical treatment selected from disintegration and granulation.

Claims (27)

1. A sulfide solid electrolyte, comprising:

a material comprising a lithium element, a sulfur element, and a phosphorus element; and

a complexing agent which is an amine compound and is forming a co-crystal with the lithium element, the sulfur element, and the phosphorus element,

wherein the sulfide solid electrolyte has a volume-based average particle diameter measured by laser diffraction particle size distribution measurement of 3 μm or more, and a specific surface area measured by a BET method of 20 m 2 /g or more.

2. The sulfide solid electrolyte of claim 1 , which is a precursor suitable for at least one mechanical treatment selected from the group consisting of disintegration and granulation.

3. The sulfide solid electrolyte of claim 1 , further comprising a halogen element.

4. The sulfide solid electrolyte of claim 1 , which is amorphous or crystalline.

5. The sulfide solid electrolyte of claim 1 , which is crystalline.

6. The sulfide solid electrolyte of claim 1 , having a thio-LISICON Region II-type crystal structure.

7. A method of treating the sulfide solid electrolyte according to claim 1 , the method comprising:

subjecting the sulfide solid electrolyte to at least one mechanical treatment selected from the group consisting of disintegration and granulation.

8. The method of claim 7 , wherein the at least one mechanical treatment is performed with a pulverizer or an agitator.

9. The method of claim 7 , wherein the at least one mechanical treatment is performed using a solvent.

10. The method of claim 7 , wherein the at least one mechanical treatment is performed with a ball mill, a bead mill, or a high-speed rotation thin-film-type agitator.

11. The method of claim 7 , wherein the at least one mechanical treatment is performed with a pulverizer provided with a rotating body capable of agitating the sulfide solid electrolyte, and a circumferential velocity of the rotating body is adjusted, thereby adjusting the disintegration or granulation of the sulfide solid electrolyte in the at least one mechanical treatment.

12. The method of claim 11 , wherein the rotating body is rotated at a low circumferential velocity, to achieve the disintegration, or the rotating body is rotated at a high circumferential velocity, to achieve the granulation.

13. The method of claim 7 , wherein the at least one mechanical treatment is performed with a high-speed rotation thin-film-type agitator.

14. The method of claim 7 , further comprising:

heating the sulfide solid electrolyte after the at least one mechanical treatment.

15. The sulfide solid electrolyte of claim 3 , wherein the sulfide solid electrolyte is obtained through a process comprising mixing a raw material inclusion comprising the lithium element, the sulfur element, the phosphorus element, and the halogen element with the complexing agent.

16. The sulfide solid electrolyte of claim 15 , wherein the mixing is performed to obtain an electrolyte precursor, and the process further comprises pulverizing the electrolyte precursor.

17. The sulfide solid electrolyte of claim 15 , wherein the mixing is performed to obtain an electrolyte precursor, and the process further comprises heating the electrolyte precursor or heating a pulverized product of the electrolyte precursor obtained by pulverizing the electrolyte precursor.

18. The sulfide solid electrolyte of claim 1 , having the volume-based average particle diameter measured by laser diffraction particle size distribution measurement of 150 μm or less.

19. The sulfide solid electrolyte of claim 1 , having a half width of a maximum peak including a background at 2θ=10 to 40° in X-ray diffractometry using a CuKα ray of Δ2θ=0.32 or less.

20. The sulfide solid electrolyte of claim 1 , wherein the amine compound is at least one selected from the group consisting of tetramethylethylenediamine, tetraethylethylenediamine, tetramethyldiaminopropane, and tetraethyl diaminopropane.

21. A crystalline sulfide solid electrolyte, obtained by heating the sulfide solid electrolyte of claim 1 .

22. The sulfide solid electrolyte of claim 1 , wherein a content of the complexing agent in the sulfide solid electrolyte is greater than 0% by mass and equal to or less than 10% by mass.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2020
From: SHIBATA, MASAYUKI; YAMADA, HIROAKI; NAKAYA, NOBUHITO; ISEKI, YUSUKE; SENGA, MINORU; HAYAKAWA, TAKASHI; SHIMADA, SHOGO; OKUYAMA, TOMOYUKI; KATO, KOJI
To: IDEMITSU KOSAN CO.,LTD.
Reel/Frame 054708/0457 →
Priority Claims (2)
JP JP2018-219130 · Nov 22, 2018 · national
JP JP2019-148211 · Aug 9, 2019 · national
Continuity (1)
Related Publication 20210242496A1 · Aug 5, 2021
Cited By (1)
US 12,738,499