IP Library Granted Patent US 12,315,873
Granted Patent B2
US 12,315,873 · App. 16/918,647 · Granted May 27, 2025

Solid-state battery separator including low melt temperature inorganic electrolyte and method of fabricating the same

Inventors: Lonnie G. Johnson (Atlanta, GA); David Johnson (Douglasville, GA)
Assignee: JOHNSON IP HOLDING, LLC.
H01M10/0562H01M4/13H01M4/134H01M4/621H01M10/0436H01M10/052H01M50/434H01M2004/027H01M4/0411H01M4/043H01M4/131H01M4/139H01M4/1395H01M4/405H01M50/46H01M2300/0068H01M2300/0091Y02T10/70
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Quick Facts
Patent No.
US 12,315,873
App. No.
16/918,647
Granted
May 27, 2025
Kind
B2
Abstract

Embodiments of solid-state batteries, battery components, and related construction methods are described. The components include one or more embodiments of a low melt temperature electrolyte bonded solid-state rechargeable battery electrode and one or more embodiments of a composite separator having a low melt temperature electrolyte component. Embodiments of methods for fabrication of solid-state batteries and battery components are described. These methods include co-extrusion, hot pressing and roll casting.

Claims (56)

1. A method of preparing a solid-state electrolyte (SSE) containing no liquid electrolyte, the method comprising:

mixing a plurality of powder constituents selected from the group consisting of LiNO 3 —Al 2 O 3 , Li 2 O—MoO 3 , Li 2 O—WO 3 , LiBr—Li 2 O—WO 3 , and LiBr—Li 2 O—B 2 O 3 —P 2 O 5 ;

pressing or rolling the plurality of powder constituents at an elevated temperature sufficient to soften or melt the plurality of powder constituents;

cooling the plurality of powder constituents beneath the elevated temperature; and

re-hardening the plurality of powder constituents based on cooling to bind the plurality of powder constituents together.

2. A method of manufacturing an all-solid-state battery containing no liquid electrolyte, the method comprising:

forming a cathode;

forming a separator on the cathode; and

forming an anode on the separator,

wherein the separator includes a solid, softened, and re-hardened inorganic electrolyte selected from the group consisting of LiNO 3 —Al 2 O 3 , Li 2 O—MoO 3 , Li 2 O—WO 3 , LiBr—Li 2 O—WO 3 , and LiBr—Li 2 O—B 2 O 3 —P 2 O 5 .

3. A method of manufacturing an all-solid-state lithium battery that contains no liquid electrolyte, all-solid-state lithium battery comprising an anode including an anode active material, a solid electrolyte separator formed on a surface of the anode, and a cathode formed on a surface of the solid electrolyte separator opposite the anode, the method comprising:

(a) coating an anode slurry on a foil substrate by feeding the foil substrate over a roller onto a casting table as the foil substrate passes along the casting table, wherein the foil substrate is an anode current collector;

(b) controlling a thickness of an anode coating layer formed by step (a) on the foil substrate;

(c) drying a coated substrate formed by steps (a) and (b) by passing the coated substrate along the casting table to a first dryer oven to be dried by evaporation;

(d) passing the coated substrate through a first set of heated rollers followed by cooling to form an anode coating structure;

(e) coating an electrolyte separator slurry to form an electrolyte separator on a surface of the anode by passing the cathode along the casting table;

(f) controlling a thickness of an electrolyte separator formed by step (e) on the anode to form a multilayer structure;

(g) drying the multilayer structure formed in step (f) by passing the multilayer structure along the casting table to a second dryer oven to be dried by evaporation;

(h) passing a dried multilayer structure formed in step (g) through a second set of heated rollers to melt and bond at least the electrolyte separator formed in step (e) to the anode and form the solid electrolyte separator on the surface of the anode upon cooling,

wherein the solid electrolyte separator includes a solid, softened, and re-hardened inorganic electrolyte selected from the group consisting of LiNO 3 —Al 2 O 3 , Li 2 O—MoO 3 , Li 2 O—WO 3 , LiBr—Li 2 O—WO 3 , and LiBr—Li 2 O—B 2 O 3 —P 2 O 5 ; and

(i) forming a cathode current collector on a surface of the solid electrolyte separator opposite the anode by feeding an cathode current collector foil to be pressed and bonded to the surface of the solid electrolyte separator as the multilayer structure passes along the casting table to a third set of heated rollers to form a completed cell casting of all-solid-state lithium battery,

wherein in step (a), the anode slurry is premixed by milling and comprises a first carrier liquid, an anode active material powder, and at least one of a first electrolyte powder, a second electrolyte powder, and an electrically conductive powder,

wherein in steps (b) and (f), the thicknesses of the anode slurry and the electrolyte separator slurry are controlled by passing the coated substrate formed in step (c) through respective doctor blades,

wherein in step (d), the first set of rollers are heated to a melt temperature of the first electrolyte powder to melt and bond the first electrolyte powder with the anode active material,

wherein in step (e), the electrolyte separator slurry comprises a second carrier liquid and at least one of the first electrolyte powder and the second electrolyte powder; and

wherein in step (h) the second set of rollers are heated to the melt temperature of at least one of the first electrolyte powder and the second electrolyte powder.

4. A method of manufacturing an all-solid-state lithium battery comprising a cathode including a cathode active material, a solid electrolyte separator formed on a surface of the cathode, and an anode formed on a surface of the solid electrolyte separator opposite the cathode, the method comprising:

(a) coating a cathode slurry on a foil substrate by feeding the foil substrate over a roller onto a casting table as the foil substrate passes along the casting table, wherein the foil substrate is a cathode current collector;

(b) controlling a thickness of a cathode coating layer formed by step (a) on the foil substrate;

(c) drying a coated substrate formed by steps (a) and (b) by passing the coated substrate along the casting table to a first dryer oven to be dried by evaporation;

(d) passing the coated substrate through a first set of heated rollers followed by cooling to form a cathode coating structure;

(e) coating an electrolyte separator slurry to form an electrolyte separator on a surface of the cathode by passing the cathode coating structure along the casting table;

(f) controlling a thickness of the electrolyte separator formed by step (e) on the cathode to form a first multilayer structure;

(g) drying the first multilayer structure formed in step (f) by passing the first multilayer structure along the casting table to a second dryer oven to be dried by evaporation;

(h) passing a first dried multilayer structure formed in step (g) through a second set of heated rollers to melt and bond at least the electrolyte separator formed in step (e) to the cathode and form the solid electrolyte separator on the surface of the cathode upon cooling,

wherein the solid electrolyte separator includes a solid, softened, and re-hardened inorganic electrolyte selected from the group consisting of LiNO 3 —Al 2 O 3 , Li 2 O—MoO 3 , Li 2 O—WO 3 , LiBr—Li 2 O—WO 3 , and LiBr—Li 2 O—B 2 O 3 —P 2 O 5 ; and

(i) forming an anode current collector on the solid electrolyte separator opposite the cathode by feeding an anode current collector foil to be pressed and bonded to the surface of the solid electrolyte separator as the first dried multilayer structure passes along the casting table to a third set of heated rollers to form a completed cell casting of all-solid-state lithium battery,

wherein in step (a), the cathode slurry is premixed by milling and comprises a first carrier liquid, a cathode active material powder, and at least one of a first electrolyte powder, a second electrolyte powder, and an electrically conductive powder,

wherein in steps (b) and (f), the thicknesses of the cathode slurry and the electrolyte separator slurry are controlled by passing the coated substrate formed in step (c) through respective doctor blades,

wherein in step (d), the first set of rollers are heated to a melt temperature of the first electrolyte powder to melt and bond the first electrolyte powder with the cathode active material,

wherein in step (e), the electrolyte separator slurry comprises a second carrier liquid and at least one of the first electrolyte powder and the second electrolyte powder; and

wherein in step (h) the second set of rollers are heated to the melt temperature of at least one of the first electrolyte powder and the second electrolyte powder.

5. The method of claim 4 , wherein at least one of the first carrier liquid and the second carrier liquid is acetonitrile.

6. The method of claim 4 , wherein the second electrolyte powder has a conductivity of greater than 10 −6 S/cm and is selected from the group consisting of a lithium germanium phosphorous sulfide based electrolyte material, a lithium lanthanum zirconium oxide based electrolyte material, a lithium lanthanum titanium oxide based electrolyte material, LiSiCON, and a polymer electrolyte material.

7. The method of claim 4 , wherein the electrically conductive powder comprises carbon black or carbon nanotubes.

8. The method of claim 4 , wherein the cathode coating structure further comprises a polymer electrolyte configured to bond the cathode coating structure together.

9. The method of claim 4 , wherein the cathode includes a lithium metal-oxide active material.

10. The method of claim 9 , wherein the cathode active material comprises lithium nickel manganese cobalt oxide.

11. The method of claim 4 , further comprising:

coating an anode slurry comprising an anode active material on the surface of the solid electrolyte separator opposite the cathode to form an anode coating layer and a second multilayer structure as the first multilayer structure passes along the casting table;

controlling a thickness of the anode slurry;

drying the second multilayer structure to form a second dried multilayer structure by passing the second multilayer structure along the casting table to a third dryer oven to be dried by evaporation; and

passing the second dried multilayer structure through a fourth set of heated rollers to melt and bond the anode coating layer to the solid electrolyte separator prior to press bonding the anode current collector foil to the anode coating layer.

12. The method of claim 11 , wherein the anode active material comprises lithium titanium oxide.

13. The method of claim 4 , wherein the electrolyte separator slurry further comprises a lithium phosphorous sulfide based conductive electrolyte material including Li 10 GeP 2 S 12 .

14. The method of claim 13 , wherein the lithium phosphorous sulfide based conductive electrolyte material comprises Li 10 GeP 2 S 12 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2020
From: JOHNSON, LONNIE G.; JOHNSON, DAVID
To: JOHNSON IP HOLDING, LLC.
Reel/Frame 053102/0581 →
Continuity (4)
Division 16109295 · Aug 22, 2018
Continuation 13829525 · Mar 14, 2013
Provisional Application 61711676 · Oct 9, 2012
Related Publication 20200335756A1 · Oct 22, 2020
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