IP Library Granted Patent US 11,299,429
Granted Patent B2
US 11,299,429 · App. 16/883,000 · Granted Apr 12, 2022

Electrochromic device including lithium-rich anti-perovskite material

Inventors: Adrian Winoto (San Jose, CA); Douglas Weir (Alameda, CA); Guillermo Garcia (Oakland, CA); Jason K. Holt (Larkspur, CA); Amir Bayati (Santa Clara, CA); Bonil Koo (Walnut Creek, CA); Hai Wang (Dublin, CA)
Assignee: HELIOTROPE TECHNOLOGIES, INC.
C04B35/5152B32B9/005B32B17/06B32B18/00C04B35/553E06B3/6722E06B9/24G02F1/155G02F1/1523B32B2255/205B32B2255/26B32B2307/202B32B2307/412B32B2307/71C04B2235/3203C04B2237/704E06B2009/2464G02F2001/1555G02F2201/086
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Quick Facts
Patent No.
US 11,299,429
App. No.
16/883,000
Granted
Apr 12, 2022
Kind
B2
Abstract

An electrochromic device includes a light transmissive first substrate, a working electrode disposed on the first substrate, a light transmissive second substrate facing the first substrate, a counter electrode disposed on the second substrate, and a lithium-rich anti-perovskite (LiRAP) material disposed between the first and second substrates. The LiRAP material includes an ionically conductive and electrically insulating LiRAP material.

Claims (32)

1. An electrochromic (EC) device comprising:

a light transmissive first substrate;

a working electrode disposed on the first substrate;

a light transmissive second substrate facing the first substrate;

a counter electrode disposed on the second substrate;

a solid state electrolyte including a polymer material disposed between the counter electrode and the working electrode; and

a lithium-rich anti-perovskite (LiRAP) material disposed between the first and second substrates, the LiRAP material comprising an ionically conductive and electrically insulating LiRAP material.

2. The EC device of claim 1 , wherein the LiRAP material is represented by the formula Li 3 OX, wherein X is F, Cl, Br, I, or any combination thereof.

3. The EC device of claim 1 , wherein the LiRAP material comprises Li 3 OI.

4. The EC device of claim 1 , wherein the LiRAP material comprises a LiRAP layer disposed between the electrolyte and the counter electrode.

5. The EC device of claim 1 , wherein the LiRAP material comprises a LiRAP layer disposed between the electrolyte and the working electrode.

6. The EC device of claim 1 , wherein the LiRAP material comprises:

a first LiRAP layer disposed between the electrolyte and the counter electrode; and

a second LiRAP layer disposed between the electrolyte and the working electrode.

7. The EC device of claim 1 , wherein:

the working electrode comprises transition metal oxide nanostructures; and

the LiRAP material forms a matrix in which nanostructures of the working electrode are disposed, the LiRAP material and the nanostructures of the working electrode form a composite working electrode, or the LiRAP material forms shells around the nanostructures of the working electrode.

8. The EC device of claim 1 , wherein the LiRAP material is configured to reduce or prevent side reactions between the working electrode and the solid state electrolyte disposed between the counter electrode and the working electrode.

9. The EC device of claim 1 , wherein the LiRAP material is configured to reduce or prevent generation of gas bubbles in the solid state electrolyte disposed between the counter electrode and the working electrode.

10. The EC device of claim 1 , wherein the LiRAP material is configured to reduce or prevent ultraviolet photochromic darkening of the working electrode.

11. The EC device of claim 1 , wherein the LiRAP material is formed from a precursor mixture comprising LiNO 3 and LiI.

12. A method of making an electrochromic (EC) device, comprising:

providing a light transmissive first substrate;

providing a precursor mixture comprising at least one lithium salt of a lithium-rich anti-perovskite (LiRAP) precursor material and transition metal oxide nanostructures in a solvent on the first substrate;

annealing the precursor mixture to form a working electrode on the first substrate;

providing a light transmissive second substrate;

forming a counter electrode on the second substrate; and

forming a solid state electrolyte including a polymer material between the counter electrode and the working electrode.

13. The method of claim 12 , wherein:

the at least one lithium salt comprises an oxygen-containing lithium salt and a halogen salt of lithium; and

the transition metal oxide nanostructures comprise tungsten oxide nanostructures.

14. The method of claim 13 , wherein the at least one lithium salt comprises LiNO 3 and LiI.

Assignments (4)
CHANGE OF NAME Recorded Apr 25, 2023
From: HELIOTROPE EUROPE S.L.
To: HIVISQ TECHNOLOGIES, SOCIEDAD LIMITADA
Reel/Frame 063441/0258 →
CHANGE OF NAME Recorded Jan 30, 2023
From: HELIOTROPE TECHNOLOGIES, INC.
To: HELIOTROPE EUROPE S.L.
Reel/Frame 062531/0404 →
CHANGE OF NAME Recorded Jan 30, 2023
From: HELIOTROPE EUROPE S.L.
To: HIVISQ TECHNOLOGIES, S.L.
Reel/Frame 062547/0026 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2020
From: WINOTO, ADRIAN; WEIR, DOUGLAS; GARCIA, GUILLERMO; HOLT, JASON K.; BAYATI, AMIR; KOO, BONIL; WANG, HAI
To: HELIOTROPE TECHNOLOGIES, INC.
Reel/Frame 052748/0368 →
Continuity (3)
Continuation 16007488 · Jun 13, 2018
Provisional Application 62520077 · Jun 15, 2017
Related Publication 20200285125A1 · Sep 10, 2020