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Degradation mechanism of tetracycline in water by MoS2/PVDF porous membrane driven by water flow |
WANG Yue-lu1, HAI Shi-kun1, HAN Jia-jun2, ZHANG Jin-xiao2, ZHAI Yuan-meng2 |
1. Department of Public Discipline Teaching, Shangqiu Medical College, Henan 476000, China; 2. School of Materials Engineering, Henan University of Engineering, Henan 450000, China |
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Abstract In advanced oxidation processes (AOPs) based on peroxymonosulfate (PMS), efficient activation and utilization of PMS was considered to be an important goal for the removal of organic pollutants. The piezoelectric effect driven by water flow was introduced into PMS activation in this study, using the prepared MoS2/PVDF membrane as a piezoelectric membrane to remove tetracycline (TC) from water. The degradation efficiency of TC by MoS2/PVDF membrane was 77.9% within 60min was showed in the results, with a reaction rate constant of 0.0231min-1, which was higher than that of MoS2 (0.0135min-1) and PVDF (0.0085min-1). Sacrificial agent experiments combined with LC-MS were used to explore the intermediates of the TC degradation process and analyze the reaction mechanism. In cycling experiments, the excellent reusability and recyclability was exhibited in MoS2/PVDF membranes. These results indicated that under the mechanical vortex force of water flow, MoS2/PVDF membrane can trigger piezoelectric potential and generate abundant free electrons to activate PMS, thereby producing various active substances to degrade organic pollutants.
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Received: 01 July 2024
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