Highly active thermally stable nanoporous gold catalyst
In one embodiment, a system includes a nanoporous gold structure and a plurality of oxide particles deposited on the nanoporous gold structure; the oxide particles are characterized by a crystalline phase. In another embodiment, a method includes depositing oxide nanoparticles on a nanoporous gold support to form an active structure and functionalizing the deposited oxide nanoparticles.
1. A system, comprising
a nanoporous gold structure; and
a plurality of oxide particles deposited on the nanoporous gold structure,
wherein the oxide particles are characterized by a crystalline phase; and
wherein the oxide particles comprise one or more metal oxides selected from a group consisting of: a titanium oxide characterized by a predominantly anatase crystalline phase; a cerium oxide characterized by a predominantly fluoride crystalline phase having oxygen vacancies; a praseodymium oxide characterized by a predominantly fluoride crystalline phase having oxygen vacancies; and an iron oxide characterized by a predominantly hematite crystalline phase.
2. The system as recited in claim 1 , wherein the nanoporous gold structure comprises a plurality of ligaments, and
wherein gold in the ligaments is resistant to sintering at temperatures up to about 600 C.
3. The system as recited in claim 2 , wherein the ligaments are characterized by an average diameter in a range from about 25 nm to about 75 nm.
4. The system as recited in claim 2 , wherein the ligaments define a plurality of nanopores having an average diameter in a range from about 10 nm to about 50 nm.
5. The system as recited in claim 4 , wherein the nanopores are homogenously distributed throughout the nanoporous gold structure, wherein the oxide particles are distributed throughout available nanopores of the nanoporous gold structure.
6. The system as recited in claim 1 , wherein at least 95 vol % of the oxide particles are characterized by the crystalline phase.
7. The system as recited in claim 1 , wherein the plurality of oxide particles have physical characteristics of being:
deposited by a process selected from: atomic layer deposition, liquid phase deposition, and wet chemical impregnation; and
incubated at a predetermined temperature for a predetermined period of time sufficient to cause the oxide particles to have primarily a predetermined crystalline phase selected from: an anatase crystalline phase, a hematite crystalline phase, a fluoride crystalline phase having oxygen vacancies.
8. The system as recited in claim 1 , wherein the nanoporous gold structure is characterized by a high specific surface area in a range from about 5 m 2 /g to about 15 m 2 /g.
9. The system as recited in claim 1 , wherein the system exhibits a carbon monoxide oxidation activity not less than a value in a range from about 5 s −1 to about 20 s −1 .
10. The system as recited in claim 1 , further comprising: a substrate;
wherein the nanoporous gold structure and deposited oxide nanoparticles are arranged as a thin film deposited on and/or coupled to the substrate,
wherein the thin film is characterized by a thickness in a range from about 100 nm to about 1 mm.
11. A three dimensional structure comprising the nanoporous gold structure and deposited oxide nanoparticles as recited in claim 1 ,
wherein the three dimensional structure is characterized by a volume not less than about 1 mm 3 .
12. The system as recited in claim 1 , wherein the oxide particles comprise the praesodymium oxide characterized by the predominantly fluoride crystalline phase having oxygen vacancies.
13. The system as recited in claim 1 , wherein the oxide particles comprise the titanium oxide characterized by the predominantly anatase crystalline phase.
14. The system as recited in claim 13 , wherein the oxide particles are deposited on ligaments of the nanoporous gold structure to a depth in a range from approximately 2.5 nm to approximately 10 nm.
15. A system, comprising
a nanoporous gold structure; and
a plurality of oxide particles deposited on the nanoporous gold structure,
wherein the oxide particles are characterized by a crystalline phase;
wherein the plurality of oxide particles have physical characteristics of being:
deposited by a process selected from: atomic layer deposition, liquid phase deposition, and wet chemical impregnation; and
incubated at a predetermined temperature for a predetermined period of time sufficient to cause the oxide particles to have primarily a predetermined crystalline phase selected from: an anatase crystalline phase, a hematite crystalline phase, a fluoride crystalline phase having oxygen vacancies.
16. A system, comprising
a nanoporous gold structure; and
a plurality of oxide particles deposited on the nanoporous gold structure,
wherein the oxide particles are characterized by a crystalline phase;
wherein the oxide particles comprise predominantly anatase phase titanium oxide; and
wherein the oxide particles are deposited on ligaments of the nanoporous gold structure to a depth in a range from approximately 2.5 nm to approximately 10 nm.