IP Library Granted Patent US 8,309,489
Granted Patent B2
US 8,309,489 · App. 12/818,928 · Granted Nov 13, 2012

Thermally stable nanoparticles on supports

Assignee: University of Central Florida Research Foundation, Inc.
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Quick Facts
Patent No.
US 8,309,489
App. No.
12/818,928
Granted
Nov 13, 2012
Kind
B2
Abstract

An inverse micelle-based method for forming nanoparticles on supports includes dissolving a polymeric material in a solvent to provide a micelle solution. A nanoparticle source is dissolved in the micelle solution. A plurality of micelles having a nanoparticle in their core and an outer polymeric coating layer are formed in the micelle solution. The micelles are applied to a support. The polymeric coating layer is then removed from the micelles to expose the nanoparticles. A supported catalyst includes a nanocrystalline powder, thin film, or single crystal support. Metal nanoparticles having a median size from 0.5 nm to 25 nm, a size distribution having a standard deviation ≦0.1 of their median size are on or embedded in the support. The plurality of metal nanoparticles are dispersed and in a periodic arrangement. The metal nanoparticles maintain their periodic arrangement and size distribution following heat treatments of at least 1,000° C.

Claims (16)

1. A supported catalyst, comprising:

a support comprising a nanocrystalline powder, a thin film, or a single crystal;

a plurality of metal nanoparticles having a median size from 0.5 nm to 25 nm, a size distribution having a standard deviation ≦0.1 of said median size on or embedded in said support, said plurality of metal nanoparticles being dispersed from one another and positioned in a periodic arrangement.

2. The supported catalyst of claim 1 , wherein said support comprises said thin film or said single crystal, and wherein said thin film or said single crystal includes a metal oxide surface.

3. The supported catalyst of claim 2 , wherein said metal oxide surface comprises alumina or titania.

4. The supported catalyst of claim 3 , further comprising raised metal oxide stripes on said metal oxide surface, wherein said raised metal oxide stripes are raised 0.3 to 0.6 nm above surrounding portions of said metal oxide surface.

5. The supported catalyst of claim 4 , wherein said plurality of metal nanoparticles comprise Pt or Pd.

6. The supported catalyst of claim 1 , wherein said plurality of metal nanoparticles have a median size from 0.5 to 5 nm.

7. The supported catalyst of claim 1 , further comprising a carbon comprising adhesion layer interposed between said support and said plurality of nanoparticles that enhances adhesion between said support and said plurality of nanoparticles so that said plurality of metal nanoparticles maintain said periodic arrangement and said size distribution following heat treatments of at least 1,000° C.

8. The supported catalyst of claim 7 , wherein said carbon comprising adhesion layer is about 1 to 2 nm thick.

9. A supported catalyst, comprising:

a support comprising an oxide thin film, or a single crystal having an oxide surface;

a plurality of metal nanoparticles comprising Pt or Pd having a median size from 0.5 nm to 5 nm, a size distribution having a standard deviation ≦0.1 of said median size on or embedded in said support, said plurality of metal nanoparticles being dispersed from one another and positioned in a periodic arrangement.

10. The supported catalyst of claim 9 , wherein said oxide comprises titania and said oxide surface comprises a titania surface, and wherein said periodic arrangement comprises hexagonal, further comprising raised titania stripes on said titania surface, wherein said raised titania stripes are raised 0.3 to 0.6 nm above surrounding portions of said titania surface.

11. The supported catalyst of claim 9 , further comprising a carbon comprising adhesion layer interposed between said support and said plurality of nanoparticles that enhances adhesion between said support and said plurality of nanoparticles sufficiently so that said plurality of metal nanoparticles maintain said periodic arrangement and said size distribution following heat treatments of at least 1,000° C.

12. The supported catalyst of claim 11 , wherein said carbon comprising adhesion layer is about 1 to 2 nm thick.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jul 14, 2021
From: UNIVERSITY OF CENTRAL FLORIDA
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 056930/0167 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 18, 2010
From: ROLDAN CUENYA, BEATRIZ; NAITABDI, AHMED R.; BEHAFARID, FARZAD
To: UNIVERSITY OF CENTRAL FLORIDA RESEARCH FOUNDATION, INC.
Reel/Frame 024562/0480 →
Continuity (2)
Provisional Application 61218285 · Jun 18, 2009
Related Publication 20100323884A1 · Dec 23, 2010