IP Library › Granted Patent US 11,978,848
Granted Patent B2
US 11,978,848 · App. 17/330,508 · Granted May 7, 2024

Method for producing solid electrolyte

Inventors: Shinji Tanaka (Ichihara, JP); Fumio Yamakawa (Ichihara, JP)
Assignee: Idemitsu Kosan Co., Ltd.
H01M10/0562H01M10/0525H01M2300/0065
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,978,848
App. No.
17/330,508
Granted
May 7, 2024
Kind
B2
Abstract

The invention is to provide a novel method for producing a solid electrolyte having a high ionic conductivity according to a liquid-phase method. The production method for a solid electrolyte includes mixing a raw material inclusion containing a lithium atom, a sulfur atom, a phosphorus atom and a halogen atom with a complexing agent and a solvent, wherein the amount of the complexing agent is 0.1 mL or more and 4.0 mL or less relative to 1 g of the total mass of the raw material inclusion.

Claims (27)

1. A method for producing a solid electrolyte, comprising mixing a raw material inclusion comprising a lithium atom, a sulfur atom, a phosphorus atom and a halogen atom with a complexing agent and a solvent, wherein:

the amount of the complexing agent is 0.1 mL or more and 4.0 mL or less relative to 1 g of the total mass of the raw material inclusion, and

the halogen atom is provided by a lithium halide or a halogen molecule, and

wherein the method further comprises removing a liquid component of the complexing agent, after said mixing.

2. The method for producing a solid electrolyte according to claim 1 , wherein the halogen atom is provided by the lithium halide and the solubility of the lithium halide at 25° C. in the solvent is smaller than the solubility of the lithium halide at 25° C. in the complexing agent.

3. The method for producing a solid electrolyte according to claim 1 , wherein the boiling point of the solvent is higher than the boiling point of the complexing agent.

4. The method for producing a solid electrolyte according to claim 1 , wherein the solvent contains two or more solvent species and at least one solvent species has a boiling point higher than that of the complexing agent.

5. The method for producing a solid electrolyte according to claim 1 , further comprising obtaining a slurry of the solvent and an electrolyte precursor by removal of the liquid component of the complexing agent.

6. The method for producing a solid electrolyte according to claim 5 , comprising further removing the solvent from the slurry of the solvent and the electrolyte precursor to give the electrolyte precursor.

7. The method for producing a solid electrolyte according to claim 5 , further comprising heating the electrolyte precursor.

8. The method for producing a solid electrolyte according to claim 5 , wherein the content of the complex in the electrolyte precursor is 30 to 80% by mass based on the total amount of the electrolyte precursor.

9. The method for producing a solid electrolyte according to claim 1 , wherein the halogen atom is provided by the lithium halide and the solubility of the lithium halide at 25° C. in the solvent is less than 0.5 g/100 ml.

10. The method for producing a solid electrolyte according to claim 1 , wherein the solvent comprises an ether solvent or a hydrocarbon solvent.

11. The method for producing a solid electrolyte according to claim 10 , wherein the solvent comprises a hydrocarbon solvent and the hydrocarbon solvent comprises one or more selected from an aliphatic hydrocarbon solvent, an alicyclic hydrocarbon solvent and an aromatic hydrocarbon solvent.

12. The method for producing a solid electrolyte according to claim 1 , wherein the raw material inclusion comprises two or more kinds of halogen atoms.

13. The method for producing a solid electrolyte according to claim 1 , wherein the raw material inclusion comprises one or more kinds of lithium halides.

14. The method for producing a solid electrolyte according to claim 1 , wherein the raw material inclusion comprises at least one selected from lithium sulfide, phosphorus sulfide, a phosphorus halide, a halogen molecule, amorphous Li 3 PS 4 and crystalline Li 3 PS 4 .

15. The method for producing a solid electrolyte according to claim 1 , wherein the complexing agent comprises a hetero atom-containing compound.

16. The method for producing a solid electrolyte according to claim 1 , wherein the complexing agent comprises an amino group-containing compound.

17. The method for producing a solid electrolyte according to claim 1 , wherein the complexing agent comprises a compound having at least two tertiary amino groups in the molecule.

18. The method for producing a solid electrolyte according to claim 1 , wherein the solvent is present in an amount of 0.1 to 50 mL relative to 1 g of the total mass of the raw material inclusion.

19. The method for producing a solid electrolyte according to claim 1 , wherein the solid electrolyte comprises a thio-LISICON Region II-type crystal structure.

20. The method for producing a solid electrolyte according to claim 1 , wherein the solid electrolyte does not have a diffraction peak at 20=17.5° and 26.1° in X-ray diffractometry using a CuKa ray.

21. A method for producing a solid electrolyte, comprising mixing a raw material inclusion comprising a lithium atom, a sulfur atom, a phosphorus atom and a halogen atom with a complexing agent and a solvent, wherein:

the amount of the complexing agent is 0.1 mL or more and 4.0 mL or less relative to 1 g of the total mass of the raw material inclusion, and

the halogen atom is provided by a lithium halide or a halogen molecule, and

wherein the boiling point of the solvent is higher than the boiling point of the complexing agent.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2021
From: TANAKA, SHINJI; YAMAKAWA, FUMIO
To: IDEMITSU KOSAN CO., LTD.
Reel/Frame 056353/0102 →
Priority Claims (1)
JP 2020-092748 · May 27, 2020 · national
Continuity (1)
Related Publication 20210376377A1 · Dec 2, 2021
Cited By (1)
US 12,646,744