IP Library › Granted Patent US 11,939,224
Granted Patent B2
US 11,939,224 · App. 16/970,336 · Granted Mar 26, 2024

Ordered porous solid electrolyte structures, electrochemical devices with same, methods of making same

Inventors: Eric D Wachsman (Fulton, MD); Dennis McOwen (Washington, DC); Yunhui Gong (Clarksville, MD); Yang Wen (Tempe, AZ)
Assignee: University of Maryland, College Park
C01B33/22B22F10/25B22F10/34B22F10/38B33Y10/00B33Y70/00B33Y80/00C01B25/45C01F7/028C01G25/006H01M10/0525H01M10/0562C01P2002/30C01P2002/72C01P2004/02C01P2004/03C01P2006/40H01M2300/0077
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Quick Facts
Patent No.
US 11,939,224
App. No.
16/970,336
Granted
Mar 26, 2024
Kind
B2
Abstract

Provided are solid-state electrolyte structures. The solid-state electrolyte structures are ion-conducting materials. The solid-state electrolyte structures may be formed by 3-D printing using 3-D printable compositions. 3-D printable compositions may include ion-conducting materials and at least one dispersant, a binder, a plasticizer, or a solvent or any combination of one or more dispersant, binder, plasticizer, or solvent. The solid-state electrolyte structures can be used in electrochemical devices.

Claims (26)

1. A solid-state electrolyte structure, comprising:

a substrate of a first ion-conducting material and having a first surface, wherein the first ion-conducting material is a first solid-state ion-conducting electrolyte material; and

a non-planar first ordered porous microstructure disposed on a first surface of the substrate, the first ordered porous microstructure comprising a second ion-conducting material, and the second ion-conducting material is a solid-state, ion-conducting electrolyte material; and

wherein the first ordered porous microstructure comprises a plurality of columns arranged in a two-dimensional array.

2. The solid-state electrolyte structure of claim 1 , wherein the second ion-conducting material is the same as the first ion-conducting material.

3. The solid-state electrolyte structure of claim 1 , wherein the substrate has a second surface opposite the first surface, and the solid-state electrolyte structure further comprises a second ordered porous microstructure disposed on the second surface of the substrate, and the second ordered porous microstructure comprising a third ion-conducting material that is a third solid-state, ion-conducting electrolyte material.

4. The solid-state electrolyte structure of claim 3 , wherein the third ion-conducting material is the same as the first ion-conducting material and/or the second ion-conducting material.

5. The solid-state electrolyte structure of claim 3 , wherein the second ordered porous microstructure comprises a plurality of columnar structures, a line structure, a grid structure, or a multilayer grid structure.

6. The solid-state electrolyte structure of claim 1 , wherein the second ion-conducting material is a lithium-ion-conducting material, sodium-ion-conducting material, or magnesium-ion-conducting material or an ion-conducting polymeric material.

7. The solid-state electrolyte structure of claim 6 , wherein the lithium-ion-conducting material is a lithium-garnet material, the sodium-ion-conducting material is Na 3 Zr,Si 2 PO 12 (NASICON) or beta-alumina or cation-doped NASICON, and the magnesium-ion-conducting material is Mg 1+x (Al,Ti) 2 (PO 4 ) 6 , or MgZr 4 P 6 O 24 or NASICON-type magnesium-ion-conducting materials.

8. The solid-state electrolyte structure of claim 1 , further comprising a cathode material or an anode material disposed on at least a portion of the first ordered porous microstructure.

9. The solid-state electrolyte structure of claim 8 , wherein the cathode material is sulfur, air, or oxygen, or is a lithium-containing cathode material, a sodium-containing cathode material, or a magnesium-containing cathode material.

10. The solid-state electrolyte structure of claim 8 , wherein the solid-state electrolyte structure comprises the anode material, and the anode material is a metal anode.

11. An electrochemical device comprising one or more solid-state electrolyte structure of claim 1 , wherein the electrochemical device is a solid-state, ion-conducting battery comprising:

a cathode material or an anode material forming a cathode electrode or an anode electrode, respectively;

the solid-state electrolyte structure of claim 1 , wherein the cathode material or the anode material is disposed on at least a portion of the ordered porous region of the solid-state electrolyte structure, and

a current collector disposed on at least a portion of the cathode material or the anode material.

12. A method of making the ordered porous solid state electrolyte structure of claim 1 , the method comprising:

a) depositing a solid state electrolyte precursor material to form a first layer of the solid state electrolyte precursor material disposed on a dense layer such that a first layer of ordered solid state electrolyte precursor material disposed on the dense layer is formed;

b) optionally, depositing a second layer of solid state electrolyte precursor material such that at a second layer of ordered solid state electrolyte precursor material is formed, wherein the second layer of ordered solid state electrolyte material is disposed on a least a portion of the first layer of ordered porous solid state material;

c) optionally, waiting a predetermined amount of time and/or heating the layer;

d) optionally, repeating the depositing from b), and, optionally, the waiting from c), a desired number of times; and

e) optionally, drying the layer(s) of ordered solid state electrolyte precursor material after all of the solid state electrolyte precursor material layers are deposited; and

f) heating the dried layer(s) of ordered solid state electrolyte precursor material to form the first ordered porous microstructure.

13. The solid-state electrolyte structure of claim 1 , wherein the second ion-conducting material is different from the first ion-conducting material.

14. The method of claim 12 , wherein the heating is sintering.

Assignments (1)
CONFIRMATORY LICENSE Recorded Sep 21, 2026
From: UNIV OF MARYLAND, COLLEGE PARK
To: UNITED STATES GOVERNMENT
Reel/Frame 076090/0316 →
Continuity (2)
Provisional Application 62631324 · Feb 15, 2018
Related Publication 20210083320A1 · Mar 18, 2021