IP Library Granted Patent US 12695158
Granted Patent B2
US 12695158 · App. 18/951,559 · Granted Jul 28, 2026

Binders for composite electrolytes

Inventors: Irune Villaluenga (Berkeley, CA); Joanna Burdynska (Berkeley, CA); Kevin Wujcik (Berkeley, CA)
Assignee: Blue Current, Inc.
H01M50/497H01B1/22H01M10/0525H01M50/414H01M50/431
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Quick Facts
Patent No.
US 12695158
App. No.
18/951,559
Filed
Nov 18, 2024
Granted
Jul 28, 2026
Kind
B2
Art Unit
1762
USPC
252/500
Abstract

Provided herein are composite electrolytes that include inorganic conductors and polar polymers. By providing the polar polymers as structures such as microspheres in a suspension in a non-polar solvent, the polar polymers can be used as binders in composites that include sulfide electrolytes. The resulting composites have high room temperature conductivities and good mechanical properties. Also provided are composites that include inorganic conductors and other polymers that are insoluble in non-polar solvents. Also provided are composites that include polar polymers and lithium argyrodite conductors and methods of processing the composites that result in high conductivity retention. Also provided are methods of forming composite electrolytes using suspensions of polymer microstructures in a processing solvent and the resulting composite electrolytes.

Claims (12)

1 . A composite comprising:

ionically conductive lithium argyrodite particles and a polymer binder comprising a first polymer and a second polymer, wherein the first polymer is insoluble in a non-polar solvent, the second polymer is soluble in the non-polar solvent, and the first polymer has a melting temperature (T m ) or a glass transition temperature (T g ) greater than a T m or T g of the second polymer, and wherein the composite has an ionic conductivity of at least 0.3 mS/cm and wherein the first and second polymers are provided as a first copolymer.

2 . The composite of claim 1 , wherein the weight percent of the first polymer in the composite is greater that the weight percent of the second polymer in the composite.

3 . The composite of claim 1 , wherein the non-polar solvent has a polarity index of less than 3.5.

4 . The composite of claim 1 , wherein the non-polar solvent has a polarity index of less than 3.0.

5 . The composite of claim 1 , wherein the weight percent of the polymer binder in the composite is between 2.5% and 60%.

6 . The composite of claim 1 , wherein the weight percent of the polymer binder in the composite is between 15% and 45%.

7 . The composite of claim 6 , wherein the balance of the composite consists essentially of the ionically conductive lithium argyrodite particles.

8 . The composite of claim 1 , wherein the polymer binder consists essentially of the first polymer and the second polymer.

9 . The composite of claim 1 , wherein the composite is a separator in a battery.

10 . A composite comprising:

ionically conductive lithium argyrodite particles and a polymer binder comprising a first polymer, wherein the first polymer is insoluble in a first non-polar solvent and soluble in a second non-polar solvent wherein the composite has an ionic conductivity of at least 0.3 mS/cm and wherein the first and second polymers are provided as a first copolymer.