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Crystal-Facet-Dependent Piezocatalytic Activity of BiFeO3 Nanosheets for H2 Evolution and Environmental Remediation.

Authors :
Wang, Xiangge
Lu, Xiaoxiao
Zhao, Xiaojing
Chen, Wen-Jie
Liu, Yubin
Pan, Xiaoyang
Liang, Shijing
Source :
ACS Applied Nano Materials; 5/24/2024, Vol. 7 Issue 10, p11794-11802, 9p
Publication Year :
2024

Abstract

Reasonable adjustment of the exposed crystal facets has been proven to be an effective strategy to improve the activity of the catalyst. However, the crystal-facet-dependent piezoactivity is rarely investigated. In this work, BiFeO<subscript>3</subscript> with highly exposed (012) or (110) crystal facets were synthesized by adjusting the volume ratio of solvent and reaction time. Ethylene glycol was used as a structure-directing agent for the synthesis of BiFeO<subscript>3</subscript> nanosheets (BiFeO<subscript>3</subscript>–NS) with highly exposed (012) facets. BiFeO<subscript>3</subscript>–NS shows an obvious higher piezoelectric catalytic hydrogen evolution rate than that of BiFeO<subscript>3</subscript> nanoparticles (BiFeO<subscript>3</subscript>–NP) with highly exposed (110) facets. In addition, the rate constant of BiFeO<subscript>3</subscript>–NS for the piezocatalytic degradation of rhodamine B (RhB) shows a 2-fold increase than that of BiFeO<subscript>3</subscript>–NP. A variety of controlled experiments have been performed. It is revealed that these two nanomaterials exhibit comparable specific surface areas and adsorption capacity. BiFeO<subscript>3</subscript>–NS possesses narrowed bandgap as compared to that of BiFeO<subscript>3</subscript>–NP. The enhanced piezocatalytic activity of BiFeO<subscript>3</subscript>–NS can be attributed to its built-in electric field, strong carrier mobility, and effective charge separation efficiency. This study provides an alternative perspective for piezoelectric catalysis in surface engineering. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
25740970
Volume :
7
Issue :
10
Database :
Complementary Index
Journal :
ACS Applied Nano Materials
Publication Type :
Academic Journal
Accession number :
177485520
Full Text :
https://doi.org/10.1021/acsanm.4c01407