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Structural evolution of MoS2 supported gold nanoclusters under CO oxidation condition and the effect on reaction activity.

Authors :
Han, Jingli
Fan, Yuanyuan
Yang, Yongpeng
Liu, Zhongyi
Source :
Applied Surface Science. Mar2021, Vol. 543, pN.PAG-N.PAG. 1p.
Publication Year :
2021

Abstract

The structural transformation ascribed by MoS 2 support and different CO coverages during CO oxidation. • Gold nanoclusters can undergo significant reconstruction during CO oxidation. • Au 19 /MoS 2 transforms into 2D structure for Au 19 (CO) 6 /MoS 2 and quasi-2D structure for Au 19 (CO) 12 /MoS 2. • The stability of reconstructed Au m (CO) n /MoS 2 is confirmed by AIMD simulations. • CO adsorption can change the diffusion of Au nanocluster on MoS 2 support. • The structural reconstruction has remarkable effect on the CO oxidation, varying with Au nanocluster size. The understanding of structural evolution of metal nano-catalysts under real reaction condition is crucial for studying the catalytic properties. DFT calculations with van der Waals correction were performed to study the CO oxidation catalytic activity of Au nanoclusters with reconstruction due to CO adsorption. The global minimum structures of bare and MoS 2 supported Au n (n = 1–20) nanoclusters, as well as Au n (n = 6, 12, 16 and 19)/MoS 2 with different CO coverages, were obtained by minimum hopping algorithm to study the structural evolution. It is noted that three-dimensional Au 19 supported on MoS 2 transforms into two-dimensional structure for Au 19 (CO) 6 /MoS 2 and quasi-2D structure for Au 19 (CO) 12 /MoS 2 with CO coverage increasing. The stability of Au n (CO) m /MoS 2 at 300 K was confirmed by ab initio molecular dynamics simulations, and the effect of CO adsorption on nanoclusters diffusion was also observed. Microkinetic analysis results indicated that the MoS 2 support and structural reconstruction caused by CO adsorption both have remarkable effect on the CO oxidation activity, and the effect varies with Au nanocluster size. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
543
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
148283599
Full Text :
https://doi.org/10.1016/j.apsusc.2020.148841