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基于微观结构调控和能带结构的BiOBr-BiOI全范围复合材料中具有可调可见光活性光催化反应性的多异质结的制备

Fabrication of multiple heterojunctions with tunable visible-light-active photocatalytic reactivity in BiOBr-BiOI full-range composites based on microstructure modulation and band structures.

作者信息

Huang Hongwei, Han Xu, Li Xiaowei, Wang Shichao, Chu Paul K, Zhang Yihe

机构信息

Beijing Key Laboratory of Materials Utilization of Nonmetallic Minerals and Solid Wastes, National Laboratory of Mineral Materials, School of Materials Science and Technology, China University of Geosciences , Beijing 100083, China.

出版信息

ACS Appl Mater Interfaces. 2015 Jan 14;7(1):482-92. doi: 10.1021/am5065409. Epub 2015 Jan 6.

Abstract

The fabrication of multiple heterojunctions with tunable photocatalytic reactivity in full-range BiOBr-BiOI composites based on microstructure modulation and band structures is demonstrated. The multiple heterojunctions are constructed by precipitation at room temperature and characterized systematically. Photocatalytic experiments indicate that there are two types of heterostructures with distinct photocatalytic mechanisms, both of which can greatly enhance the visible-light photocatalytic performance for the decomposition of organic pollutants and generation of photocurrent. The large separation and inhibited recombination of electron-hole pairs rendered by the heterostructures are confirmed by electrochemical impedance spectra (EIS) and photoluminescence (PL). Reactive species trapping, nitroblue tetrazolium (NBT, detection agent of (•)O2(-)) transformation, and terephthalic acid photoluminescence (TA-PL) experiments verify the charge-transfer mechanism derived from the two types of heterostructures, as well as different enhancements of the photocatalytic activity. This article provides insights into heterostructure photocatalysis and describes a novel way to design and fabricate high-performance semiconductor composites.

摘要

基于微观结构调控和能带结构,展示了在全范围BiOBr-BiOI复合材料中制备具有可调光催化活性的多重异质结。多重异质结通过室温沉淀构建,并进行了系统表征。光催化实验表明,存在两种具有不同光催化机制的异质结构,二者均可显著提高可见光催化分解有机污染物和产生光电流的性能。电化学阻抗谱(EIS)和光致发光(PL)证实了异质结构导致的电子-空穴对的大量分离和复合抑制。活性物种捕获、硝基蓝四唑(NBT,(•)O2(-)的检测剂)转化和对苯二甲酸光致发光(TA-PL)实验验证了源自两种异质结构的电荷转移机制,以及光催化活性的不同增强。本文为异质结构光催化提供了见解,并描述了一种设计和制备高性能半导体复合材料的新方法。

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