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低浓度过一硫酸盐与可见光协同作用于构筑的 BiFeO/BiOClZ 型异质结上,引发氧活性物种生成,用于去除各种四环素类抗生素。

Low concentration of peroxymonosulfate coupled with visible light triggers oxygen reactive species generation over constructed BiFeO/BiOCl Z-scheme heterojunction for various tetracycline antibiotics removal.

机构信息

School of Chemistry and Chemical Engineering, Institute for Energy Research, Jiangsu University, 301 Xuefu Road, Zhenjiang 212013, China.

School of Chemistry and Chemical Engineering, Institute for Energy Research, Jiangsu University, 301 Xuefu Road, Zhenjiang 212013, China.

出版信息

J Colloid Interface Sci. 2024 Jul;665:825-837. doi: 10.1016/j.jcis.2024.03.138. Epub 2024 Mar 21.

DOI:10.1016/j.jcis.2024.03.138
PMID:38564946
Abstract

Photocatalytic peroxymonosulfate (PMS) oxidation systems demonstrate significant potential and promising prospects through the interconnection of photocatalytic and PMS oxidation for simultaneously achieving efficient pollutant removal and reduction of PMS dosage, which prevents resource wastage and secondary pollution. In this study, a Z-scheme BiFeO/BiOCl (BOFC) heterojunction was constructed to carry out the photocatalytic PMS oxidation process for tetracyclines (TCs) pollutants at low PMS concentrations (0.08 mM). The photocatalytic PMS oxidation rate of BiFeO/BiOCl composites for tetracycline hydrochloride (TCH), chlortetracycline (CTC), oxytetracycline (OTC) and doxycycline (DXC) reaches 86.6%, 83.6%, 86.7%, and 88.0% within 120 min. Simultaneously, the BOFC/PMS system under visible light (Vis) equally displayed the practical application prospects for the solo and mixed simulated TCs antibiotics wastewater. Based on the electron spin resonance (ESR) and X-ray photoelectron spectroscopy (XPS) valence band spectrum, a Z-scheme electron migration pathway was proposed to elucidate the mechanism underlying the performance enhancement of BOFC composites. BiFeO in BOFC composites can serve as active site for activating PMS by the formation of Fe/Fe cycle. Toxicity estimation software tool (T.E.S.T.) and mung beans planting experiment demonstrates that BOFC/PMS/Vis system can reduce toxicity of TCs wastewater. Therefore, BOFC/PMS/Vis system achieves efficient examination in different water environments and efficient utilization of PMS, which displays a scientific reference for achieving environmentally-friendly and resource-saving handling processes.

摘要

光催化过一硫酸盐(PMS)氧化体系通过光催化和 PMS 氧化的相互连接,展示了很大的潜力和广阔的前景,可同时实现高效去除污染物和减少 PMS 用量,从而防止资源浪费和二次污染。在这项研究中,构建了 Z 型 BiFeO/BiOCl(BOFC)异质结,用于在低 PMS 浓度(0.08 mM)下进行光催化过一硫酸盐氧化四环素(TCs)污染物的过程。BiFeO/BiOCl 复合材料对盐酸四环素(TCH)、金霉素(CTC)、土霉素(OTC)和强力霉素(DXC)的光催化 PMS 氧化速率在 120 min 内分别达到 86.6%、83.6%、86.7%和 88.0%。同时,BOFC/PMS 可见光(Vis)体系对单独和混合模拟 TCs 抗生素废水同样显示出实际应用前景。基于电子自旋共振(ESR)和 X 射线光电子能谱(XPS)价带谱,提出了 Z 型电子迁移途径来阐明 BOFC 复合材料性能增强的机制。BOFC 复合材料中的 BiFeO 可以通过形成 Fe/Fe 循环作为激活 PMS 的活性位点。毒性估计软件工具(T.E.S.T.)和绿豆种植实验表明,BOFC/PMS/Vis 体系可以降低 TCs 废水的毒性。因此,BOFC/PMS/Vis 体系在不同水环境中实现了高效检测和 PMS 的有效利用,为实现环保和资源节约处理过程提供了科学参考。

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