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在可见光下,Z型FeO修饰的MoO表面上的类芬顿过程增强。

Enhanced Fenton-like process over Z-scheme MoO surface decorated with FeO under visible light.

作者信息

Hsu Hsien-Tse, Lin Shao-Ying, Lu Ya-Ting, Chuang Yao-Yuan, Chuang Shiow-Huey

机构信息

Department of Applied Chemistry, National University of Kaohsiung, Kaohsiung, 81148, Taiwan.

Department of Chemical and Materials Engineering, National University of Kaohsiung, Kaohsiung, 81148, Taiwan.

出版信息

Sci Rep. 2024 Apr 5;14(1):8007. doi: 10.1038/s41598-024-58634-2.

Abstract

Photocatalysts consisting of Z-scheme heterojunctions are commonly used in wastewater treatment due to their exceptional reactivity in photocatalysis and highly efficient visible-light utilization. In this work, FeO-decorated MoO rods were synthesized through a two-step method and their photodegradation of methylene blue (MB) was evaluated. The FeO/MoO rods were characterized by XRD, SEM, micro-Raman, XPS, UV-Vis DRS, and PL to investigate their structural, morphological, and optical properties. The results indicate that the photodegradation efficiency of FeO/MoO improved through a reduction in the gap energy and persistence of a 1D hexagonal prism structure. The degradation rate of MB was enhanced from 31.7 to 91.5% after irradiation for 180 min owing to electron-hole separation and Fenton-like process. Formation of the OH radical is a key factor in the photodegradation reaction and with the addition of HO the efficiency can further improve via a Fenton-like mechanism. Furthermore, the Z-scheme mechanism concurrently delineated. The FeO/MoO rod composites were also found to retain high photocatalytic efficiency after being reused five times, which may be useful for future applications.

摘要

由Z型异质结组成的光催化剂因其在光催化方面的卓越反应性和高效的可见光利用能力而常用于废水处理。在这项工作中,通过两步法合成了FeO修饰的MoO棒,并评估了它们对亚甲基蓝(MB)的光降解性能。通过XRD、SEM、显微拉曼光谱、XPS、紫外可见漫反射光谱(UV-Vis DRS)和光致发光光谱(PL)对FeO/MoO棒进行了表征,以研究其结构、形态和光学性质。结果表明,FeO/MoO的光降解效率通过能隙的减小和一维六方棱柱结构的保留而得到提高。由于电子-空穴分离和类芬顿过程,在照射180分钟后,MB的降解率从31.7%提高到了91.5%。羟基自由基的形成是光降解反应的关键因素,通过类芬顿机制,添加HO后效率可进一步提高。此外,还同时阐述了Z型机制。还发现FeO/MoO棒复合材料在重复使用五次后仍保持高光催化效率,这可能对未来的应用有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/897a/10997789/14f89e4ce4ef/41598_2024_58634_Fig1_HTML.jpg

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