Visible-light-driven 3D Bi5O7I/BiOCl microsphere with enhanced photocatalytic capability: Performance, degradation pathway, antibacterium and mechanism

IF 8.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Jialun Huang , Jingtao Shen , Ganwei Zhang , Yongfu Guo , Xinyu Zheng
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引用次数: 11

Abstract

It is well known that both of the separation efficiency of photogenerated carriers and the response capability to visible light remarkably affect the photocatalytic performance. In the present work, a 3D microsphere of Bi5O7I/BiOCl heterojunction catalyst was synthetised. The synergy of Bi5O7I and BiOCl not only significantly enhances the transfer rate and separation efficiency of carriers, but also heightens light absorption capacity. As-prepared Bi5O7I/BiOCl (40 wt% BiOCl) has a higher degradation efficiency on doxycycline hydrochloride (DC) (90 min, 83.0%) and super high inhibition rate (90 min, 99.92%) on Escherichia coli under visible light, compared to the two monomers. Pollutants DC is finally decomposed into CO2, H2O and small molecule intermediates by generated h+, •OH and •O2. The effects of reactive radicals follow the order of •OH radicals > h+ radicals ≫ •O2 and e radicals. The possible structures of intermediates and four possible degradation pathways involved were also discussed. In addition, As-synthetised Bi5O7I/BiOCl has preferable reusability and excellent chemical stability. Biological toxicity experiments also verify that Bi5O7I/BiOCl is a green and environmentally friendly composite material. This strategy provides a green, low-toxic way for the application of traditional type II heterojunction in the fields of environmental remediation and photocatalysis.

Abstract Image

增强光催化性能的可见光驱动3D Bi5O7I/BiOCl微球:性能、降解途径、抗菌及机理
众所周知,光生载体的分离效率和对可见光的响应能力对光催化性能有显著影响。在本工作中,合成了Bi5O7I/BiOCl异质结催化剂的三维微球。Bi5O7I和BiOCl的协同作用不仅显著提高了载体的转移速率和分离效率,而且提高了光吸收能力。制备的Bi5O7I/BiOCl (40 wt% BiOCl)在可见光下对盐酸多西环素(DC)具有较高的降解效率(90 min, 83.0%),对大肠杆菌具有较高的抑制率(90 min, 99.92%)。污染物DC最终通过生成h+、•OH和•O2−分解为CO2、H2O和小分子中间体。反应性自由基的作用顺序为:•OH自由基>h+自由基:•O2 -和e -自由基。讨论了中间体可能的结构和四种可能的降解途径。此外,as合成的Bi5O7I/BiOCl具有良好的可重复使用性和优异的化学稳定性。生物毒性实验也验证了Bi5O7I/BiOCl是一种绿色环保的复合材料。这一策略为传统II型异质结在环境修复和光催化领域的应用提供了一条绿色、低毒的途径。
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来源期刊
Chemosphere
Chemosphere 环境科学-环境科学
CiteScore
15.80
自引率
8.00%
发文量
4975
审稿时长
3.4 months
期刊介绍: Chemosphere, being an international multidisciplinary journal, is dedicated to publishing original communications and review articles on chemicals in the environment. The scope covers a wide range of topics, including the identification, quantification, behavior, fate, toxicology, treatment, and remediation of chemicals in the bio-, hydro-, litho-, and atmosphere, ensuring the broad dissemination of research in this field.
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