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Dilute Alloys Based on Au, Ag, or Cu for Efficient Catalysis: From Synthesis to Active Sites.

Authors :
Lee JD
Miller JB
Shneidman AV
Sun L
Weaver JF
Aizenberg J
Biener J
Boscoboinik JA
Foucher AC
Frenkel AI
van der Hoeven JES
Kozinsky B
Marcella N
Montemore MM
Ngan HT
O'Connor CR
Owen CJ
Stacchiola DJ
Stach EA
Madix RJ
Sautet P
Friend CM
Source :
Chemical reviews [Chem Rev] 2022 May 11; Vol. 122 (9), pp. 8758-8808. Date of Electronic Publication: 2022 Mar 07.
Publication Year :
2022

Abstract

The development of new catalyst materials for energy-efficient chemical synthesis is critical as over 80% of industrial processes rely on catalysts, with many of the most energy-intensive processes specifically using heterogeneous catalysis. Catalytic performance is a complex interplay of phenomena involving temperature, pressure, gas composition, surface composition, and structure over multiple length and time scales. In response to this complexity, the integrated approach to heterogeneous dilute alloy catalysis reviewed here brings together materials synthesis, mechanistic surface chemistry, reaction kinetics, in situ and operando characterization, and theoretical calculations in a coordinated effort to develop design principles to predict and improve catalytic selectivity. Dilute alloy catalysts─in which isolated atoms or small ensembles of the minority metal on the host metal lead to enhanced reactivity while retaining selectivity─are particularly promising as selective catalysts. Several dilute alloy materials using Au, Ag, and Cu as the majority host element, including more recently introduced support-free nanoporous metals and oxide-supported nanoparticle "raspberry colloid templated (RCT)" materials, are reviewed for selective oxidation and hydrogenation reactions. Progress in understanding how such dilute alloy catalysts can be used to enhance selectivity of key synthetic reactions is reviewed, including quantitative scaling from model studies to catalytic conditions. The dynamic evolution of catalyst structure and composition studied in surface science and catalytic conditions and their relationship to catalytic function are also discussed, followed by advanced characterization and theoretical modeling that have been developed to determine the distribution of minority metal atoms at or near the surface. The integrated approach demonstrates the success of bridging the divide between fundamental knowledge and design of catalytic processes in complex catalytic systems, which can accelerate the development of new and efficient catalytic processes.

Details

Language :
English
ISSN :
1520-6890
Volume :
122
Issue :
9
Database :
MEDLINE
Journal :
Chemical reviews
Publication Type :
Academic Journal
Accession number :
35254051
Full Text :
https://doi.org/10.1021/acs.chemrev.1c00967