IP Library Granted Patent US 10,807,071
Granted Patent B2
US 10,807,071 · App. 15/498,657 · Granted Oct 20, 2020

Mesoporous metal doped cerium oxide catalyst

Inventors: Steven Suib (Storrs Mansfield, CT); Curtis Guild (Storrs Mansfield, CT); David Kriz (Willimantic, CT)
Assignee: University of Connecticut
B01J23/10B01J23/83B01J35/002B01J35/006B01J35/0013B01J35/1019B01J35/1038B01J35/1057C01B3/16C01B2203/1058C01B2203/1076
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Quick Facts
Patent No.
US 10,807,071
App. No.
15/498,657
Granted
Oct 20, 2020
Kind
B2
Abstract

A mesoporous metal doped cerium oxide catalyst is provided. The catalyst can contain nanotextured cerium oxide (CeO 2 ) which can be utilized for hydrogen production or reformate gas purification in a water gas shift reaction. The catalyst may be advantageously used to remove CO from a gas containing CO. The catalyst may also be incorporated into a fuel processor.

Claims (37)

1. A catalyst comprising:

(i) cerium oxide, and

(ii) a second metal,

wherein the cerium oxide and the second metal are combined such that the cerium oxide is doped with the second metal to define a mesoporous metal doped cerium oxide catalyst, the second metal formed in-situ so as to be uniformly or non-uniformly distributed within the mesoporous metal doped cerium oxide catalyst;

wherein an average pore volume for the mesoporous metal doped cerium oxide catalyst is between about 0.05 and about 0.5 cc/g;

wherein an average pore diameter for the mesoporous metal doped cerium oxide catalyst is between about 1.40 and about 1.45 nm;

wherein the mesoporous metal doped cerium oxide catalyst defines a surface and the second metal is located within about 0.1 to about 10 A from the surface of the mesoporous metal doped cerium oxide catalyst; and

wherein the mesoporous metal doped cerium oxide catalyst comprises a plurality of aggregated particles having a particle size between 1 and 5 nm.

2. The catalyst of claim 1 , wherein the second metal is Cu, Ni, Ti, Mg, Fe, Co or Zn.

3. A catalyst comprising:

(i) cerium oxide, and

(ii) a second metal,

wherein the cerium oxide and the second metal are combined such that the cerium oxide is doped with the second metal to define a mesoporous metal doped cerium oxide catalyst, the second metal formed in-situ so as to be uniformly or non-uniformly distributed within the mesoporous metal doped cerium oxide catalyst;

wherein an average pore volume for the mesoporous metal doped cerium oxide catalyst is between about 0.05 and about 0.5 cc/g;

wherein an average pore diameter for the mesoporous metal doped cerium oxide catalyst is between about 1.40 and about 1.45 nm;

wherein the mesoporous metal doped cerium oxide catalyst defines a surface and the second metal is located within about 0.1 to about 10 A from the surface of the mesoporous metal doped cerium oxide catalyst;

wherein the second metal is Cu or Ni.

4. A catalyst comprising:

(i) cerium oxide, and

(ii) a second metal,

wherein the cerium oxide and the second metal are combined such that the cerium oxide is doped with the second metal to define a mesoporous metal doped cerium oxide catalyst, the second metal formed in-situ so as to be uniformly or non-uniformly distributed within the mesoporous metal doped cerium oxide catalyst;

wherein an average pore volume for the mesoporous metal doped cerium oxide catalyst is between about 0.05 and about 0.5 cc/g;

wherein an average pore diameter for the mesoporous metal doped cerium oxide catalyst is between about 1.40 and about 1.45 nm;

wherein the mesoporous metal doped cerium oxide catalyst defines a surface and the second metal is located within about 0.1 to about 10 A from the surface of the mesoporous metal doped cerium oxide catalyst;

wherein the second metal is Cu.

5. The catalyst of claim 1 , comprising between about 70 and about 99 wt % cerium oxide and between about 1 and about 30 wt % second metal.

6. The catalyst of claim 1 , wherein the mesoporous metal doped cerium oxide catalyst comprises a plurality of aggregated particles wherein the average distance between particles is between about 1 and about 10 nm.

7. The catalyst of claim 1 , wherein an average lattice constant for the mesoporous metal doped cerium oxide catalyst is between about 5.2 and about 5.6 A.

8. The catalyst of claim 1 , wherein an average crystalline size for the mesoporous metal doped cerium oxide catalyst is between about 4.8 and about 5.6 nm.

9. The catalyst of claim 1 , wherein an average surface area for the mesoporous metal doped cerium oxide catalyst is between about 50 and about 300 m 2 /g.

10. The catalyst of claim 1 , wherein an average pore volume for the mesoporous metal doped cerium oxide catalyst is between about 0.3 and about 0.5 cc/g.

11. The catalyst of claim 1 , wherein a sintering temperature of the mesoporous metal doped cerium oxide catalyst is greater than about 400° C.

12. A method of removing CO from a gas containing CO, comprising contacting the catalyst of claim 1 with the gas containing CO.

13. The method of claim 12 , wherein the contacting is performed at a temperature between about 150° C. and about 300° C.

14. A fuel processor containing the catalyst of claim 1 .

15. The catalyst of claim 1 , wherein the second metal is not uniformly distributed within the catalyst.

16. The catalyst of claim 1 , wherein the second metal is Cu or Ni.

Assignments (2)
CONFIRMATORY LICENSE Recorded Sep 17, 2020
From: UNIVERSITY OF CONNECTICUT SCH OF MED/DNT
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 053800/0670 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 24, 2017
From: SUIB, STEVEN; GUILD, CURTIS; KRIZ, DAVID
To: UNIVERSITY OF CONNECTICUT
Reel/Frame 042498/0225 →
Continuity (2)
Provisional Application 62332233 · May 5, 2016
Related Publication 20170320042A1 · Nov 9, 2017