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构建S型CuInS/ZnInS异质结构以增强光催化去除Cr(VI)和降解抗生素的活性。

Construction of S-scheme CuInS/ZnInS heterostructures for enhanced photocatalytic activity towards Cr(VI) removal and antibiotics degradation.

作者信息

Xiang Xiaokang, Zhang Min, Huang Qitao, Mao Yue, Jia Junhao, Zeng Xiantao, Dong Yunyuan, Liao Jianming, Chen Xiaobin, Yao Xiaxi, Zheng Qifu, Chen Wei

机构信息

College of Chemical and Material Engineering, Quzhou University, Quzhou, Zhejiang, 324000, China.

College of Chemical and Material Engineering, Quzhou University, Quzhou, Zhejiang, 324000, China; East China University of Science and Technology Changshu Research Institute Co., Suzhou, Jiangsu Province, 215000, China.

出版信息

Chemosphere. 2024 Mar;352:141351. doi: 10.1016/j.chemosphere.2024.141351. Epub 2024 Feb 8.

DOI:10.1016/j.chemosphere.2024.141351
PMID:38340997
Abstract

The efficient and ecofriendly removal of pharmaceutical antibiotics and heavy metal Cr(VI) from water sources is a crucial challenge in current environmental management. Photocatalysis presents a viable environmentally friendly solution for eliminating organic contaminants and heavy-metal ions. In this study, a novel S-scheme CuInS/ZnInS (CIS/ZIS) heterojunction was developed using a one-pot solvothermal method. The optimized CIS/ZIS heterojunction exhibited considerably improved photocatalytic activity for the removal of antibiotics and Cr(VI), achieving over 90% removal for both tetracycline hydrochloride (TC) (20 mg/L) and Cr(VI) (20 mg/L) under visible light irradiation. The study also delved into the effect of coexisting inorganic anions and assessed the cyclic stability of the composite photocatalysts. This enhancement mechanism can be delineated into three key elements. First, the incorporation of the narrow-gap semiconductor CuInS effectively augmented the photoabsorption capacity. Second, the inclusion of ZnInS caused an increase in surface active sites. Most importantly, the internal electric field at the interface between CuInS and ZnInS expedited the separation of photogenerated carriers. Furthermore, the results revealed that superoxide radical and photogenerated holes are the primary active substance responsible for TC removal, while photogenerated electrons play a central role in the photoreduction of Cr(VI). To gain insights into the transport pathways of photogenerated carriers, we conducted experiments with nitrotetrazolium blue chloride (NBT) and photodeposited gold. This study offers an innovative approach to enhancing the photocatalytic performance of ternary In-based materials by constructing S-scheme heterojunctions.

摘要

从水源中高效且环保地去除医药抗生素和重金属六价铬是当前环境管理中的一项关键挑战。光催化为消除有机污染物和重金属离子提供了一种可行的环保解决方案。在本研究中,采用一锅溶剂热法制备了一种新型的S型CuInS/ZnInS(CIS/ZIS)异质结。优化后的CIS/ZIS异质结对抗生素和六价铬的去除表现出显著提高的光催化活性,在可见光照射下,盐酸四环素(TC)(20mg/L)和六价铬(20mg/L)的去除率均超过90%。该研究还深入探讨了共存无机阴离子的影响,并评估了复合光催化剂的循环稳定性。这种增强机制可分为三个关键因素。首先,窄带隙半导体CuInS的引入有效地增强了光吸收能力。其次,ZnInS的加入导致表面活性位点增加。最重要的是,CuInS和ZnInS界面处的内建电场加速了光生载流子的分离。此外,结果表明超氧自由基和光生空穴是负责去除TC的主要活性物质,而光生电子在六价铬的光还原中起核心作用。为了深入了解光生载流子的传输途径,我们使用氯化硝基四氮唑蓝(NBT)和光沉积金进行了实验。本研究提供了一种通过构建S型异质结来提高三元In基材料光催化性能的创新方法。

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