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构建具有丰富表面溴空位的BiOBrI用于高浓度难降解污染物的优异可见光光降解能力

Constructing BiOBrI with Abundant Surface Br Vacancies for Excellent Visible-Light Photodegradation Capability of High-Concentration Refractory Contaminants.

作者信息

Mei Hao, Wang Zhichen, Jin Dai, Zhang Rongbin, Wang Xuewen

机构信息

School of Future Technology, Nanchang University, 999 Xuefu Road, Nanchang 330031, China.

Key Laboratory of Jiangxi Province for Environment and Energy Catalysis, College of Chemistry and Chemical Engineering, Nanchang University, 999 Xuefu Road, Nanchang 330031, China.

出版信息

Inorg Chem. 2023 Aug 14;62(32):12822-12831. doi: 10.1021/acs.inorgchem.3c01457. Epub 2023 Jul 31.

Abstract

Bismuth oxybromide (BiOBr) is a promising photocatalytic semiconductor material due to its unique hierarchical structure and band structure. However, its photocatalytic applications are restricted due to its narrow visible-light absorption range and poor photooxidation capability. In this study, BiOBrI with rich surface Br vacancies (BrVs-rich BiOBrI) was created via a facile indirect substitution strategy. Benefiting from the broadened visible-light response range and reduced recombination rate of photogenerated carriers, BiOBrI shows excellent visible-light photodegradation ability for high-concentration refractory contaminants, such as phenol, tetracycline, bisphenol A, rhodamine B, methyl orange, and even real wastewater. At the same time, the Br vacancies can regulate the band structure of BiOBrI and serve as trap states to promote charge separation, thus facilitating surface photoredox reactions. An in-depth investigation of the Br vacancy effect and photodegradation mechanism was conducted. This novel study revealed the significance of Br vacancies in enhancing the photocatalytic performance of BiOBr under visible light, providing a promising strategy for improving the utilization efficiency of sunlight in wastewater treatment.

摘要

溴氧化铋(BiOBr)因其独特的分级结构和能带结构而成为一种很有前景的光催化半导体材料。然而,由于其可见光吸收范围窄和光氧化能力差,其光催化应用受到限制。在本研究中,通过一种简便的间接取代策略制备了具有丰富表面溴空位(富Br空位的BiOBrI)的BiOBrI。得益于可见光响应范围的拓宽和光生载流子复合率的降低,BiOBrI对高浓度难降解污染物,如苯酚、四环素、双酚A、罗丹明B、甲基橙,甚至实际废水,表现出优异的可见光光降解能力。同时,溴空位可以调节BiOBrI的能带结构,并作为陷阱态促进电荷分离,从而促进表面光氧化还原反应。对溴空位效应和光降解机理进行了深入研究。这项新颖的研究揭示了溴空位在增强BiOBr可见光光催化性能方面的重要性,为提高废水处理中太阳光的利用效率提供了一种有前景的策略。

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