IP Library Granted Patent US 8,592,767
Granted Patent B2
US 8,592,767 · App. 12/376,492 · Granted Nov 26, 2013

Tunable ferroelectric supported catalysts and method and uses thereof

Inventors: Andrew M. Rappe (Penn Valley, PA); Alexie M. Kolpak (Philadelphia, PA); Ilya Grinberg (Fairlawn, NJ)
Assignee: The Trustees of The University of Pennsylvania
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Quick Facts
Patent No.
US 8,592,767
App. No.
12/376,492
Granted
Nov 26, 2013
Kind
B2
Abstract

Disclosed are tunable catalysts and methods of controlling the activity of a catalyst. For example, disclosed are methods of controlling the activity of a catalyst, comprising providing a catalyst, comprising a ferroelectric substrate of finite thickness comprising two opposing surfaces, the ferroelectric substrate being characterized as having a polarization; an electrode surmounting one of the surfaces of the ferroelectric substrate; and a catalytically active material surmounting the surface of the ferroelectric substrate opposing the electrode; and subjecting the ferroelectric substrate to a controllable electric field to give rise to a modulation of the polarization of the ferroelectric substrate, whereby the modulation of the polarization controllably alters the activity of one or more chemical species on the catalytically active material.

Claims (28)

1. A method of controlling the activity of a catalyst, comprising:

providing a catalyst, comprising:

a ferroelectric substrate of finite thickness comprising two opposing surfaces, the ferroelectric substrate being characterized as having a polarization wherein the ferroelectric substrate comprises PbTiO 3 ;

an electrode surmounting one of the surfaces of the ferroelectric substrate; and

a catalytically active material surmounting the surface of the ferroelectric substrate opposing the electrode; and

subjecting the ferroelectric substrate to a controllable electric field to give rise to a modulation of the polarization of the ferroelectric substrate, whereby the modulation of the polarization controllably alters the activity of one or more chemical species on the catalytically active material.

2. The method of claim 1 , wherein the catalytically active metal comprises Pt.

3. The method of claim 1 , wherein the PbTiO 3 is terminated with TiO 2 .

4. A method of controlling the activity of a catalyst, comprising:

providing a catalyst, comprising:

a ferroelectric substrate of finite thickness comprising two opposing surfaces, the ferroelectric substrate being characterized as having a polarization;

an electrode comprising a metallic oxide surmounting one of the surfaces of the ferroelectric substrate, wherein the metallic oxide comprises indium-tin-oxide, SrTiO 3 , SrRuO 3 , or any combination thereof, and

a catalytically active material surmounting the surface of the ferroelectric substrate opposing the electrode; and

subjecting the ferroelectric substrate to a controllable electric field to give rise to a modulation of the polarization of the ferroelectric substrate, whereby the modulation of the polarization controllably alters the activity of one or more chemical species on the catalytically active material.

5. A method of controlling the activity of a catalyst, comprising:

providing a catalyst, comprising:

a ferroelectric substrate of finite thickness comprising two opposing surfaces, the ferroelectric substrate being characterized as having a polarization;

an electrode surmounting one of the surfaces of the ferroelectric substrate; and

a catalytically active material surmounting the surface of the ferroelectric substrate opposing the electrode, wherein the catalytically active material comprises Pt, Pd, Rh, Ru, Fe, Ni, V, Ti, Al, or any combination thereof; and

subjecting the ferroelectric substrate to a controllable electric field to give rise to a modulation of the polarization of the ferroelectric substrate, whereby the modulation of the polarization controllably alters the activity of one or more chemical species on the catalytically active material.

6. A tunable catalyst, comprising:

a ferroelectric substrate of finite thickness comprising two opposing surfaces, the ferroelectric substrate being characterized as having a polarization;

an electrode comprising a metallic oxide surmounting one of the surfaces of the ferroelectric substrate, wherein the metallic oxide comprises indium-tin-oxide, SrTiO 3 , or any combination thereof; and

a catalytically active material surmounting the surface of the ferroelectric substrate opposing the electrode, wherein the electrode and the catalytically active material are capable of subjecting the ferroelectric substrate to a controllable electric field to modulate the polarization of the ferroelectric substrate, whereby the modulation of the polarization is capable of controllably altering the activity of one or more chemical species on the catalytically active material.

7. A tunable catalyst, comprising:

a ferroelectric substrate of finite thickness comprising two opposing surfaces, the ferroelectric substrate being characterized as having a polarization;

an electrode surmounting one of the surfaces of the ferroelectric substrate, and

a catalytically active material surmounting the surface of the ferroelectric substrate opposing the electrode, wherein the catalytically active material comprises Pt, Pd, Rh, Ru, Fe, Ni, V, Ti, Al, or any combination thereof, wherein the electrode and the catalytically active material are capable of subjecting the ferroelectric substrate to a controllable electric field to modulate the polarization of the ferroelectric substrate, whereby the modulation of the polarization is capable of controllably altering the activity of one or more chemical species on the catalytically active material.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jun 27, 2012
From: PENNSYLVANIA, UNIVERSITY OF
To: NAVY, SECRETARY OF THE UNITED STATES OF AMERICA
Reel/Frame 028467/0005 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2010
From: RAPPE, ANDREW M.; KOLPAK, ALEXIE M.; GRINBERG, ILYA
To: THE TRUSTEES OF THE UNIVERSITY OF PENNSYLVANIA
Reel/Frame 024752/0539 →
Continuity (3)
Provisional Application 60835947 · Aug 7, 2006
Provisional Application 60908795 · Mar 29, 2007
Related Publication 20110009679A1 · Jan 13, 2011