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Constructing amorphous ZnCdS/Bi 4 Ti 3 O 12 -Ov heterostructure for enhancing piezocatalytic coupled Fenton-like reaction toward efficient wastewater purification and unraveling the mechanism

作者:Aize Hao, Xiaojuan Qiu, Yuling Ye, Zheng Fang, Youguang Ran, Jiayi Zhu, Xiaonan Liu · 发表于:Materials Futures · 年份:2026 · DOI:10.1088/2752-5724/ae5319 · 被引用次数:2 · 研究领域:Advanced oxidation water treatment、Advanced Photocatalysis Techniques、TiO2 Photocatalysis and Solar Cells

Abstract Piezocatalysis has emerged as promising technique for production of hydrogen peroxide (H 2 O 2 ) and wastewater treatment; however, slow reaction kinetics significantly hinder its efficiency. This work presents an effective strategy wherein we constructed amorphous ZnCdS and bismuth titanate with oxygen vacancies heterostructure (A-ZnCdS/Bi 4 Ti 3 O 12 -Ov, denoted as AZCS/BTO-Ov) to facilitate in-situ H 2 O 2 evolution and establish piezocatalytic coupled Fenton (PCF)-like reaction system for efficient wastewater purification. Notably, H 2 O 2 evolution rate from AZCS/BTO-Ov catalyst reaches 1172.3 µ mol g −1 h −1 in pure water, greatly surpassing the rates observed for pure BTO-Ov and AZCS. Furthermore, evolution rate increases to 2300.2 µ mol g −1 h −1 upon addition of ethanol as sacrificial agent, demonstrating excellent activity. Within PCF-like reaction system (AZCS/BTO-Ov/Fe 2+ ), particularly degradation efficiency of methyl orange dye reaches 92.9% within 16 min, accompanied by high kinetic coefficient of 0.171 min −1 , indicating exceptional catalytic activity that exceeds that of most other piezocatalysts. Relevant experimental results and density functional theory calculations unravel the reaction mechanism, demonstrating that the excellent piezocatalytic performances of AZCS/BTO-Ov are primarily attributed to the construction of heterostructure by significantly modulating electronic structure, improving separation efficiency of charge carriers, facilitat...