Boosting PMS Activation Efficiency through Constructed Built-In Electric Field in ZnO/CuO Heterojunctions for
Jiahong He1,2, Xiangming Liu1, Jibin An1
1Key Laboratory of Environmental Materials & Remediation Technologies of Chongqing, College of Chemistry & Environmental Engineering, Chongqing University of Arts and Sciences, Chongqing 402160, P. R. China.
Abstract:
Traditional PMS activation catalysts struggle with low charge-separation efficiency and an excessive reliance on single-radical pathways. In this study, a ZnO/CuO heterojunction catalyst prepared by hydrothermal synthesis was used to degrade sulfamethoxazole (SMX) through PMS activation. By applying the catalyst, the SMX degradation rate of 99.64% was achieved within 30 min. Radical-quenching experiments revealed that SO4•- (36.7%) and 1O2 (33.4%) were the main reactive species, highlighting the significance of the nonradical pathway. Meanwhile, •O2- and •OH respectively account for 15% and 14.9% of the total reactive species and also make a significant contribution to SMX degradation. The ZnO/CuO-3 Schottky interface's built-in electric field was found to enhance charge separation and transfer significantly. After five cycles, the catalyst retained a degradation efficiency above 99%, demonstrating excellent reusability. In this study, the nonradical reaction proportion during PMS activation was increased by modifying the heterojunction's electronic structure, offering a new strategy for designing stable as well as pH-sensitive, antibiotic-degradation catalysts.
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