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Efficient H2O2 dissociation and formation on zinc chalcogenides: A density functional theory study.

Authors :
Zhang, Peng
Tan, Haobin
Wang, Zhongkai
Lyu, Lai
Hu, Chun
Source :
Applied Surface Science. Apr2023, Vol. 616, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

The catalytic activity of H 2 O 2 dissociation and formation on zinc chalcogenides was determined by the surface micro-engineering construction including surface orientation and heteroatomic doping. [Display omitted] • The activity of ZnX depends on the surface orientation and heteroatoms. • H 2 O 2 can dissociate to form •OH on ZnO(1 1 0), ZnSe(1 0 0), ZnTe(1 1 0) and ZnTe(1 0 0). • ZnO (1 1 0) surface can catalyze water oxidation to form H 2 O 2. • The selectivity of water oxidation to form H 2 O 2 can be enhanced by doping. • A descriptor was derived from the valence electrons and electronegativity. Establishing the structure–activity relationship is very important for the design of new catalysts for advanced oxidation process with low energy consumption and high efficiency. In this work, the atomic mechanism of hydrogen peroxide (H 2 O 2) dissociation and formation on zinc chalcogenides (ZnX, where X denotes O, S, Se, and Te) was investigated. It was found that the catalytic activity of H 2 O 2 dissociation and formation on ZnX was determined by the surface micro-engineering construction including surface orientation and heteroatomic doping. H 2 O 2 can dissociate to easily form hydroxyl radicals on ZnO (1 1 0), ZnSe (1 0 0), ZnTe (1 1 0) and ZnTe (1 0 0) surfaces, while only the ZnO (1 1 0) surface can catalyze water oxidation to form H 2 O 2. Furthermore, the H 2 O 2 selectivity of water oxidation on the ZnO (1 1 0) surface can be enhanced by the doping with silver atoms due to the weak adsorption strength of OH*, while introducing copper atom into the ZnO (1 1 0) surface can promote H 2 O 2 dissociation. These results not only unveil the mechanism of H 2 O 2 dissociation and formation on ZnX, but also can provide helpful guidance for the development of new catalytic oxidation systems. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
616
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
161728917
Full Text :
https://doi.org/10.1016/j.apsusc.2023.156495