IP Library Granted Patent US 10,766,024
Granted Patent B2
US 10,766,024 · App. 15/977,843 · Granted Sep 8, 2020

Multicomponent plasmonic photocatalysts consisting of a plasmonic antenna and a reactive catalytic surface: the antenna-reactor effect

Inventors: Nancy Jean Halas (Houston, TX); Peter Nordlander (Houston, TX); Hossein Robatjazi (Houston, TX); Dayne Francis Swearer (Houston, TX); Chao Zhang (Houston, TX); Hangqi Zhao (Houston, TX); Linan Zhou (Houston, TX)
Assignee: William Marsh Rice University
B01J35/004B01J19/123B01J19/127B01J21/04B01J23/002B01J23/38B01J23/44B01J23/50B01J23/52B01J23/58B01J23/72B01J23/78B01J23/8926B01J23/8946B01J27/04B01J27/14B01J27/20B01J27/22B01J27/24B01J31/06B01J35/002B01J35/0006B01J35/006B01J35/008B01J35/0013B01J35/0033B01J35/1066B01J37/0203B01J37/0225B01J37/03B01J37/344B01J31/1691B01J2219/00635B01J2523/00B01J2540/66
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Quick Facts
Patent No.
US 10,766,024
App. No.
15/977,843
Filed
May 11, 2018
Granted
Sep 8, 2020
Kind
B2
Art Unit
1732
USPC
423/648.1
Abstract

A multicomponent photocatalyst includes a reactive component optically, electronically, or thermally coupled to a plasmonic material. A method of performing a catalytic reaction includes loading a multicomponent photocatalyst including a reactive component optically, electronically, or thermally coupled to a plasmonic material into a reaction chamber, introducing molecular reactants into the reaction chamber, and illuminating the reaction chamber with a light source.

Claims (22)

1. A multicomponent photocatalyst comprising:

a reactive component optically, electronically, or thermally coupled to a plasmonic material, wherein the plasmonic material has at least a portion of its surface coated with a spacer material that separates the reactive component and the plasmonic material.

2. The multicomponent photocatalyst of claim 1 , wherein the plasmonic material is selected from gold (Au), silver (Ag), copper (Cu), aluminum (Al), alloys thereof, TiN, or doped semiconductors.

3. The multicomponent photocatalyst of claim 1 , wherein the plasmonic material is a 2-dimensional material.

4. The multicomponent photocatalyst of claim 1 , wherein the spacer material is selected from a carbonaceous material, a nitride, a phosphide, a silicide, an arsenide, a selenide, a telluride, a hydride, a sulfide, a carbide, metal organic frameworks, covalent organic frameworks, a polymeric material, or an oxide.

5. The multicomponent photocatalyst of claim 1 , wherein the plasmonic material has a plasmon resonance at a wavelength between 180 nm and 10 microns.

6. The multicomponent photocatalyst of claim 1 , wherein the plasmonic material has a plasmon resonance at a wavelength between about 380 nm 760 nm of the electromagnetic spectrum.

7. The multicomponent photocatalyst of claim 1 , wherein the plasmonic material has at least one dimension with a size between about 1 nm and 300 nm.

8. The multicomponent photocatalyst of claim 1 , wherein the reactive component is a metal, semiconductor, insulator, single atom species, ionic species, organic molecules, metal complexes, or atomic cluster species.

9. The multicomponent photocatalyst of claim 1 , wherein the reactive component is a transition metal or a transition metal oxide.

10. The multicomponent photocatalyst of claim 1 , wherein the reactive component has at least one dimension with a size between an atomic diameter of a metal or ion and 100 nm.

11. The multicomponent photocatalyst of claim 1 , wherein the reactive component is physically/chemically attached to the spacer material that separates the reactive component and the plasmonic component by a distance of up to 30 nm.

12. A method of performing a catalytic reaction, comprising:

loading a multicomponent photocatalyst comprising a reactive component optically coupled to a plasmonic material into a reaction chamber, wherein the plasmonic material has at least a portion of its surface coated with a spacer material that separates the reactive component and the plasmonic material;

introducing molecular reactants into the reaction chamber; and

illuminating the reaction chamber with a light source having a wavelength overlapping a plasmon resonance of the plasmonic material.

13. The method of claim 12 , wherein a reaction medium in the reaction chamber is externally heated or externally cooled during the catalytic reaction.

14. The method of claim 12 , wherein the multicomponent photocatalyst is only heated by photothermal heating induced by the illuminating.

15. The method of claim 12 , wherein the plasmonic material is selected from gold (Au), silver (Ag), copper (Cu), aluminum (Al), alloys thereof, TiN, or doped semiconductors.

16. The method of claim 12 , wherein the plasmonic material has a plasmon resonance at a wavelength between 180 nm and 10 microns.

17. The method of claim 12 , wherein the reactive component is a metal, semiconductor, insulator, single atom species, ionic species, or atomic cluster species.

18. The method of claim 12 , wherein the multicomponent photocatalyst is dispersed onto a support material prior to loading in the reaction chamber.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2018
From: HALAS, NANCY JEAN; NORDLANDER, PETER; ROBATJAZI, HOSSEIN; SWEARER, DAYNE FRANCIS; ZHANG, CHAO; ZHAO, HANGQI; ZHOU, LINAN
To: WILLIAM MARSH RICE UNIVERSITY
Reel/Frame 047702/0187 →
CONFIRMATORY LICENSE Recorded Jul 24, 2018
From: RICE UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 046620/0235 →
Continuity (2)
Provisional Application 62505496 · May 12, 2017
Related Publication 20180333712A1 · Nov 22, 2018
Cited By (3)
US 12,403,460 US 12,564,823 US 12,569,840