Construction of a Z-scheme WO3/InVO4 heterojunction for enhanced tetracycline photodegradation efficiency

IF 2.5 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Xia Gong, Guichen Ping, Jinmei Li, Hongjing Ding, Ruixue Cui and Quanquan Shi
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引用次数: 0

Abstract

The substantial presence of antibiotics in aquatic environments remains a critical environmental issue that needs to be urgently addressed. In this study, a Z-scheme WO3/InVO4 heterojunction photocatalyst was constructed, and it exhibited superior performance for the degradation of antibiotics in contaminated water. The degradation efficiency of the WO3/InVO4 heterojunction for tetracycline (TC) was 11.2 and 1.9 times higher than those of pristine WO3 and pristine InVO4, respectively, and the remarkable performance could be maintained after several cycles, which can be ascribed to the stable Z-scheme heterostructure, leading to the efficient transfer and separation of photoinduced electrons and holes. Combined with the results of the active species trapping experiments and EPR, a possible photocatalytic mechanism was proposed, in which ˙O2 radicals were the dominating active species while photogenerated holes (h+) and ˙OH offered auxiliary effects for the degradation of TC. This work provides a valuable strategy for developing novel Z-scheme heterostructures for the remediation of antibiotic wastewater.

Abstract Image

z型WO3/InVO4异质结的构建提高了四环素的光降解效率
抗生素在水生环境中的大量存在仍然是一个迫切需要解决的关键环境问题。本研究构建了一种z型WO3/InVO4异质结光催化剂,该催化剂对污染水中抗生素的降解表现出优异的性能。WO3/InVO4异质结对四环素(TC)的降解效率分别是原始WO3和原始InVO4的11.2倍和1.9倍,并且在几个循环后仍能保持显著的性能,这可归因于稳定的Z-scheme异质结构,从而实现了光致电子和空穴的有效转移和分离。结合活性物质捕获实验和EPR结果,提出了一种可能的光催化机制,其中˙O2−自由基是主要活性物质,而光生空穴(h+)和˙OH对降解TC起辅助作用。本研究为开发新型z型异质结构修复抗生素废水提供了有价值的策略。
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来源期刊
New Journal of Chemistry
New Journal of Chemistry 化学-化学综合
CiteScore
5.30
自引率
6.10%
发文量
1832
审稿时长
2 months
期刊介绍: A journal for new directions in chemistry
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