Insights into the Electronic Structure Effect of SnMnOx Nanorod Catalysts for Low‐Temperature Catalytic Combustion of o‐Dichlorobenzene

Author:

Wang Jie12,Dong Fang2,Tang Zhicheng2ORCID,Niu Lei1,Zhao Xia1

Affiliation:

1. School of Petroleum and Chemical Lanzhou University of Technology Lanzhou 730050 P. R. China

2. State Key Laboratory for Oxo Synthesis and Selective Oxidation and National Engineering Research Center for Fine Petrochemical Intermediates Lanzhou Institute of Chemical Physics Chinese Academy of Sciences Lanzhou 730000 P. R. China

Abstract

AbstractFor the catalytic combustion reaction of chlorinated volatile organic compounds (CVOCs), the redox properties and acid sites of the catalyst surface are key factors in determining the activity, selectivity, and chlorine‐resistance stability. Herein, a series of SnMnOx catalysts for the catalytic combustion of CVOCs were prepared by the changing of Sn‐doping way to regulate the electron valance state of Mn element, including reflux (R‐SnMnOx), co‐precipitation (C‐SnMnOx) and impregnation (I‐SnMnOx). It was discovered that the R‐SnMnOx catalyst had better activity and chlorine resistance than the R‐MnOx, C‐SnMnOx and I‐SnMnOx catalyst, and we discovered that the doping ways of Sn in MnOx catalyst could regulate greatly the surface acidity, active oxygen species, the chemical state of Mnn+ species, and redox ability. Especially, the R‐SnMnOx catalysts exhibit excellent water resistance, and the reasons were related to the strong interaction of Snn+ and Mnn+, which could promote obviously the dispersion of active Mn species, form a large number of acid sites, provide the abundant lattice oxygen species, and own the excellent redox ability, which accelerate the rate of charge transfer between Snn+ and Mnn+ (Sn4++Mn2+→Sn2++Mn4+) to produce the abundant active species and accelerate the rapid conversion of benzene and intermediates conversion.

Funder

National Natural Science Foundation of China

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

Wiley

Subject

General Chemistry,Biochemistry,Organic Chemistry

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