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Research Article

Water promoted structural evolution of Ag nanocatalysts supported on alumina

Conghui Liu1,2,§Rongtan Li2,§Fei Wang3Kun Li2Yamei Fan2Rentao Mu2Qiang Fu2( )
Zhang Dayu School of Chemistry, Dalian University of Technology, Dalian 116024, China
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China
Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500, China

§ Conghui Liu and Rongtan Li contributed equally to this work.

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Graphical Abstract

The presence of H2O in an oxidative atmosphere can accelerate dispersion of supported Ag nanoparticles to nanoclusters at high temperature while enhance aggregation of Ag nanoclusters into nanoparticles at room temperature.

Abstract

Water is often involved in many catalytic processes, which can strongly affect structural evolution of catalysts during pretreatments and catalytic reactions. In this work, we demonstrate a promotional effect of H2O on both oxidative dispersion and spontaneous aggregation of Ag nanocatalysts supported on alumina. Ag nanoparticles supported on γ-Al2O3 and Ag nanowires on Al2O3(0001) can be dispersed into nanoclusters via annealing in O2 above 300 °C, which is accelerated by introduction of H2O into the oxidative atmosphere. Furthermore, the formed highly dispersed Ag nanoclusters are subject to spontaneous aggregation in humid atmosphere at room temperature. Ex situ and in situ characterizations in both powder and model catalysts suggest that formation of abundant surface hydroxyls and/or water adlayer on the Al2O3 surface in the H2O-containing atmosphere facilitates the surface migration of Ag species, thus promoting both dispersion and aggregation processes. The aggregation of the supported Ag nanostructures induced by the humid oxidative atmosphere enhances CO oxidation but inhibits selective catalytic reduction of NO with C3H6. This work illustrates the critical role of H2O in structure and catalytic performance of metal nanocatalysts, which can be widely present in heterogeneous catalysis.

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Nano Research
Pages 9107-9115
Cite this article:
Liu C, Li R, Wang F, et al. Water promoted structural evolution of Ag nanocatalysts supported on alumina. Nano Research, 2023, 16(7): 9107-9115. https://doi.org/10.1007/s12274-023-5735-6
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Received: 22 February 2023
Revised: 24 March 2023
Accepted: 12 April 2023
Published: 08 June 2023
© Tsinghua University Press 2023
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