降级(电信)
氧化还原
催化作用
纳米复合材料
四环素
化学
浸出(土壤学)
铜
水溶液
核化学
化学工程
材料科学
纳米技术
无机化学
生物化学
有机化学
计算机科学
工程类
抗生素
电信
环境科学
土壤科学
土壤水分
作者
Rui Ma,Zhijie Chen,Weihang Xu,Ranbo Yu,Yichu Zhang,Fan Chen,Xiaoming Peng,Bing‐Jie Ni,Jin Qian
标识
DOI:10.1016/j.jclepro.2024.140885
摘要
Engineering dual redox centers in catalysts for peroxymonosulfate (PMS) activation emerges an efficient strategy to achieve high pollutant degradation performance. In this study, MIL-88 A (Fe) supported copper sulphide (MIL-88 A (Fe)@CuS) was developed as a PMS activator to degrade aqueous tetracycline (TC). MIL-88 A (Fe)@CuS showed high catalytic performance towards PMS activation, and a TC degradation rate of 91.0 % (20 mg/L) could be achieved within 40 min, with a k value of 0.3921min−1. The TC removal rate of the MIL-88 A (Fe)@CuS system was 1.55 and 1.12 times higher than that of MIL-88 A (Fe) + PMS and CuS + PMS systems, respectively. MIL-88 A (Fe)@CuS also possessed excellent stability in terms of good activity maintenance, low metal leaching, and stable structure. In addition, the MIL-88 A (Fe)@CuS + PMS system exhibited good degradation performance towards different antibiotics in real water metrics. In TC degradation, reactive oxygen species (ROS) include SO4•-, •OH, O2•- and 1O2 are involved, and SO4•- served as the main species. The synergistic effect of both Cu and Fe cycles for PMS activation was confirmed, and S benefited the rapid Cu2+/Cu+ and Fe3+/Fe2+ cycling. Furthermore, three potential TC degradation pathways have been identified based on experimental and computational studies. Overall, this work presents a feasible approach for developing efficient composite catalysts for advanced oxidation processes with dual redox cycles.
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