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基于锰掺杂的铟锌硫化物的左氧氟沙星光氧化生物安全性策略。

Biosafety Photooxidation Strategy of Levofloxacin Driven by Manganese-Doped Indium Zinc Sulfide.

机构信息

Shanghai Institute of Quality Inspection and Technical Research, Shanghai, 200040, P. R. China.

Key Laboratory for Advanced Materials and Institute of Fine Chemicals, School of Chemistry & Molecular Engineering, East China University of Science and Technology, 130 Meilong Rd, Xuhui District, Shanghai, 200237, P. R. China.

出版信息

Chem Asian J. 2023 May 2;18(9):e202300161. doi: 10.1002/asia.202300161. Epub 2023 Mar 29.

Abstract

Overuse of antibiotics has led to ecological hazards such as the emergence of resistance genes and super bacteria, necessitating the development of water pollution control technology. Indium zinc sulfide (ZnIn S , ZIS) is a promising material for environmental applications due to its narrow band gap and excellent light absorption ability. This study investigates Mn-doped ZIS photocatalysts to enhance their photocatalytic oxidation efficiency. Structural morphology, electrochemical testing, and active species testing confirm that Mn-doping optimizes the energy band structure of ZIS and increases the concentration of active free radicals, improving the efficiency of charge separation. Mn-doping also causes lattice distortion, leading to trapping centers to enhance charge separation efficiency. The optimal ZIS-4% oxidation degradation rate of levofloxacin was 2.5 times higher than that of pristine ZIS, with degradation rates reaching almost 100% in 30 minutes. This study provides a novel approach to designing Mn-doped photocatalysts for antibiotic pollution control.

摘要

抗生素的过度使用导致了生态危害,如耐药基因和超级细菌的出现,因此需要开发水污染控制技术。由于其窄带隙和优异的光吸收能力,硫化铟锌(ZnInS,ZIS)是一种有前途的环境应用材料。本研究通过掺杂 Mn 来制备 ZIS 光催化剂,以提高其光催化氧化效率。结构形态、电化学测试和活性物质测试证实,Mn 掺杂优化了 ZIS 的能带结构,增加了活性自由基的浓度,提高了电荷分离效率。Mn 掺杂还会导致晶格变形,产生捕获中心,从而提高电荷分离效率。优化后的 ZIS-4%光催化氧化左氧氟沙星的降解率比原始 ZIS 提高了 2.5 倍,在 30 分钟内降解率几乎达到 100%。本研究为设计用于控制抗生素污染的 Mn 掺杂光催化剂提供了一种新方法。

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