IP Library Granted Patent US 9,347,141
Granted Patent B2
US 9,347,141 · App. 13/658,707 · Granted May 24, 2016

Nanowire mesh solar fuels generator

Inventors: Peidong Yang (Kensington, CA); Candace Chan (El Cerrito, CA); Jianwei Sun (Albany, CA); Bin Liu (Albany, CA)
Assignee: The Regents of the University of California
C25B11/035C25B1/003C25B3/04C25B9/00C25B9/08C25B11/02H01L31/18B82Y40/00Y02E60/368
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Quick Facts
Patent No.
US 9,347,141
App. No.
13/658,707
Granted
May 24, 2016
Kind
B2
Abstract

This disclosure provides systems, methods, and apparatus related to a nanowire mesh solar fuels generator. In one aspect, a nanowire mesh solar fuels generator includes (1) a photoanode configured to perform water oxidation and (2) a photocathode configured to perform water reduction. The photocathode is in electrical contact with the photoanode. The photoanode may include a high surface area network of photoanode nanowires. The photocathode may include a high surface area network of photocathode nanowires. In some embodiments, the nanowire mesh solar fuels generator may include an ion conductive polymer infiltrating the photoanode and the photocathode in the region where the photocathode is in electrical contact with the photoanode.

Claims (22)

1. An apparatus comprising:

a photoanode configured to perform water oxidation, the photoanode including a high surface area network of photoanode nanowires; and

a photocathode configured to perform water reduction or carbon dioxide reduction, the photocathode being disposed on a surface of and being in electrical contact with the photoanode, the photocathode including a high surface area network of photocathode nanowires;

wherein (a) the photoanode nanowires are oriented in random directions with respect to the lateral dimension of the photoanode, or (b) the photocathode nanowires are oriented in random directions with respect to the lateral dimension of the photocathode.

2. The apparatus of claim 1 , further comprising:

an ion conductive polymer infiltrating the photoanode and the photocathode proximate a region where the photocathode is disposed on the surface of the photoanode.

3. The apparatus of claim 1 , wherein the photoanode nanowires include a photoanode material selected from the group consisting of WO 3 , TiO 2 , SrTiO 3 , NaTaO 3 , oxynitrides, TaON, GaZnON, Fe 2 O 3 , and BiVO 4 .

4. The apparatus of claim 1 , wherein a diameter of each of the photoanode nanowires is about 10 nm to 500 nm.

5. The apparatus of claim 4 , wherein an aspect ratio of each of the photoanode nanowires is about 10 to 1000.

6. The apparatus of claim 1 , wherein an orientation of the photoanode nanowires is selected from the group consisting of the photoanode nanowires being oriented substantially vertically with respect to a lateral dimension of the photoanode, the photoanode nanowires being oriented substantially horizontally with respect to the lateral dimension of the photoanode, and the photoanode nanowires being oriented in random directions with respect to the lateral dimension of the photoanode.

7. The apparatus of claim 1 , wherein a thickness of the photoanode is less than the optical absorption length of the photoanode material.

8. The apparatus of claim 1 , wherein the photocathode nanowires include a photocathode material selected from the group consisting of GaP, Si, InGaP, InP, Cu 2 O, and Rh—SrTiO 3 .

9. The apparatus of claim 1 , wherein a diameter each of the photocathode nanowires is about 10 nm to 500 nm.

10. The apparatus of claim 9 , wherein an aspect ratio of each of the photocathode nanowires is about 10 to 1000.

11. The apparatus of claim 1 , wherein an orientation of the photocathode nanowires is selected from the group consisting of the photocathode nanowires being oriented substantially vertically with respect to a lateral dimension of the photocathode, the photocathode nanowires being oriented substantially horizontally with respect to the lateral dimension of the photocathode, and the photocathode nanowires are oriented in random directions with respect to the lateral dimension of the photocathode.

12. The apparatus of claim 1 , wherein a thickness of the photocathode is less than the optical absorption length of the photocathode material.

13. The apparatus of claim 1 , wherein the photoanode includes photoanode co-catalyst particles deposited on the photoanode nanowires.

14. The apparatus of claim 1 , wherein the photocathode includes photocathode co-catalyst particles deposited on the photocathode nanowires.

15. The apparatus of claim 14 , wherein a photocathode co-catalyst particle comprises Pt, Mo 3 S 4 , MoS 2 , a water reduction catalyst, a CO 2 reduction catalyst, MoS 3 , or Cu.

16. The apparatus of claim 15 , wherein the photocathode co-catalyst particle comprises Pt or Cu.

17. The apparatus of claim 1 , wherein the photoanode co-catalyst particle comprises Pt, cobalt oxide, manganese oxide, RuO x , IrO x , or a water oxidation catalyst.

18. The apparatus of claim 17 , wherein the photoanode co-catalyst particle comprises Pt, RuO x , or IrO x .

Assignments (3)
CONFIRMATORY LICENSE Recorded Apr 27, 2020
From: UNIVERSITY OF CALIF-LAWRENC BERKELEY LAB
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 052498/0396 →
CONFIRMATORY LICENSE Recorded Apr 4, 2013
From: REGENTS OF THE UNIVERSITY OF CALIFORNIA, THE
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 030162/0542 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2013
From: YANG, PEIDONG; CHAN, CANDACE; SUN, JIANWEI; LIU, BIN
To: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
Reel/Frame 029988/0207 →
Continuity (2)
Provisional Application 61552279 · Oct 27, 2011
Related Publication 20130105305A1 · May 2, 2013