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基于一维BiOCl纳米棒与二维Bi₂WO₆纳米片相交的3D中空分层结构用于可见光下的高效光催化

3D Hollow Hierarchical Structures Based on 1D BiOCl Nanorods Intersected with 2D Bi₂WO₆ Nanosheets for Efficient Photocatalysis Under Visible Light.

作者信息

Ma Yongchao, Lv Chao, Hou Jiahui, Yuan Shaoteng, Wang Yanru, Xu Ping, Gao Ge, Shi Jinsheng

机构信息

Department of Chemistry and Pharmaceutical Science, Qingdao Agricultural University, Qingdao 266109, China.

出版信息

Nanomaterials (Basel). 2019 Mar 1;9(3):322. doi: 10.3390/nano9030322.

Abstract

Constructing elaborate catalysts to prompt the charge carrier separation and transport is critical to developing efficient photocatalytic systems. Here, a hierarchical hollow structure based on 1D/2D BiOCl/Bi₂WO₆ hybrid materials was fabricated by a precursor chemical engineering method. This hybrid is made up of molten 1D BiOCl nanorods and 2D Bi₂WO₆ nanosheets. The synergetic effect of the presence of BiOCl and specific interfaces between BiOCl and Bi₂WO₆ provided efficient interfacial charge transfer of photogenerated carriers under visible light. Seamless BiOCl functions like a noble metal, with platinum-like behavior, accelerating the oxidizing ability of fabricated BiOCl/Bi₂WO₆ hybrids, which was favorable for the photocatalytic decomposition of organic compounds (3.2 times greater for Rhodamine B (RhB) and 4 times greater for Ciprofloxacin (CIP)) over the Bi₂WO₆ catalysts. The beneficial interfacial interaction between BiOCl and Bi₂WO₆ resulting from the unique construction prompted the charge transfer from the conduction band of Bi₂WO₆ to that of BiOCl. The findings presented in this study provide a cost-effective precursor-mediated strategy to realize the critical and efficient separation of photoinduced carriers in environmental remediation applications.

摘要

构建精心设计的催化剂以促进电荷载流子的分离和传输对于开发高效的光催化系统至关重要。在此,通过前驱体化学工程方法制备了一种基于一维/二维BiOCl/Bi₂WO₆杂化材料的分级中空结构。这种杂化物由熔融的一维BiOCl纳米棒和二维Bi₂WO₆纳米片组成。BiOCl的存在以及BiOCl与Bi₂WO₆之间特定界面的协同效应在可见光下提供了光生载流子的高效界面电荷转移。无缝的BiOCl具有类似贵金属的功能,表现出类似铂的行为,加速了所制备的BiOCl/Bi₂WO₆杂化物的氧化能力,这有利于有机化合物的光催化分解(罗丹明B(RhB)的分解效率提高3.2倍,环丙沙星(CIP)的分解效率提高4倍),优于Bi₂WO₆催化剂。独特结构导致的BiOCl与Bi₂WO₆之间有益的界面相互作用促使电荷从Bi₂WO₆的导带转移到BiOCl的导带。本研究中的发现提供了一种经济高效的前驱体介导策略,以在环境修复应用中实现光生载流子的关键且高效的分离。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b03/6473858/20fbbfdb7a44/nanomaterials-09-00322-g001.jpg

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