Z-scheme heterojunction BiOBr/MIL-100(Fe) visible photocatalytic-permonosulfate degradation of AO7.

IF 2.5 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Water Science and Technology Pub Date : 2025-02-01 Epub Date: 2025-02-04 DOI:10.2166/wst.2025.010
Xin Liu, Xianxiong Cheng, Junfeng Lian, Jiahua Tang, Rui Wang
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Abstract

Metal-organic frameworks (MOFs) have garnered significant interest in the field of photocatalysis. In this study, Z-scheme heterojunction BM-x composites consisting of bismuth bromide oxide (BiOBr) and iron-based metal-organic backbone (MIL-100(Fe)) were successfully synthesized using ethylene glycol as a solvent. The composites were characterized using various techniques. BM-x exhibit abundant functional groups, large specific surface areas, and narrow band gap energy, thus provide numerous active sites for catalytic reactions and respond well to visible light. Notably, BM-7 displays remarkable catalytic activity in a visible light-activated permonosulfate (PMS) system and achieves a degradation rate of 99.02% over 100 mg/L gold orange II (AO7) within 60 min. The effects of BM-7 and PMS addition, initial AO7 concentration, initial pH, inorganic anions, and humic acid on the degradation system were investigated. The proposed mechanism of the Z-scheme heterojunction in the BM-7 photocatalyst demonstrates effective photoelectron transfer from the BiOBr conduction band to the MIL-100(Fe) valence band, resulting in excellent catalytic activity. Radical burst experiments identified 1O2, h+, and ·O2- as the main active substances. BM-7 has high stability and reusability, with a degradation rate reduction of only 14.48% after three recycles. These findings provide valuable insights into using persulfate combined with visible light.

Z-scheme异质结BiOBr/MIL-100(Fe)可见光催化-过氧化氢硫酸盐降解AO7。
金属有机骨架(MOFs)在光催化领域引起了广泛的关注。本研究以乙二醇为溶剂,成功合成了由溴化铋氧化物(BiOBr)和铁基金属-有机骨架(MIL-100(Fe))组成的z型异质结BM-x复合材料。利用各种技术对复合材料进行了表征。BM-x具有丰富的官能团、较大的比表面积和窄带隙能量,因此为催化反应提供了大量的活性位点,并且对可见光有良好的响应。在可见光活化的permonosulfate (PMS)体系中,BM-7表现出了显著的催化活性,对100 mg/L的金橙II (AO7)在60 min内的降解率达到99.02%。研究了BM-7和PMS添加量、AO7初始浓度、初始pH、无机阴离子和腐植酸对降解体系的影响。BM-7光催化剂的z -图式异质结机制表明,光电子从BiOBr导带有效转移到MIL-100(Fe)价带,从而产生优异的催化活性。自由基爆发实验鉴定出1O2、h+和·O2-为主要活性物质。BM-7具有较高的稳定性和可重复使用性,三次循环后降解率仅降低14.48%。这些发现为过硫酸盐与可见光结合使用提供了有价值的见解。
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来源期刊
Water Science and Technology
Water Science and Technology 环境科学-工程:环境
CiteScore
4.90
自引率
3.70%
发文量
366
审稿时长
4.4 months
期刊介绍: Water Science and Technology publishes peer-reviewed papers on all aspects of the science and technology of water and wastewater. Papers are selected by a rigorous peer review procedure with the aim of rapid and wide dissemination of research results, development and application of new techniques, and related managerial and policy issues. Scientists, engineers, consultants, managers and policy-makers will find this journal essential as a permanent record of progress of research activities and their practical applications.
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