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半导体异质结光催化剂:设计、构建与光催化性能。

Semiconductor heterojunction photocatalysts: design, construction, and photocatalytic performances.

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, State Environmental Protection Engineering Center for Pollution Treatment and Control in Textile Industry, College of Environmental Science and Engineering, Donghua University, Shanghai, 201620, China.

出版信息

Chem Soc Rev. 2014 Aug 7;43(15):5234-44. doi: 10.1039/c4cs00126e.

Abstract

Semiconductor-mediated photocatalysis has received tremendous attention as it holds great promise to address the worldwide energy and environmental issues. To overcome the serious drawbacks of fast charge recombination and the limited visible-light absorption of semiconductor photocatalysts, many strategies have been developed in the past few decades and the most widely used one is to develop photocatalytic heterojunctions. This review attempts to summarize the recent progress in the rational design and fabrication of heterojunction photocatalysts, such as the semiconductor-semiconductor heterojunction, the semiconductor-metal heterojunction, the semiconductor-carbon heterojunction and the multicomponent heterojunction. The photocatalytic properties of the four junction systems are also discussed in relation to the environmental and energy applications, such as degradation of pollutants, hydrogen generation and photocatalytic disinfection. This tutorial review ends with a summary and some perspectives on the challenges and new directions in this exciting and still emerging area of research.

摘要

半导体介导的光催化受到了极大的关注,因为它有希望解决全球能源和环境问题。为了克服半导体光催化剂快速电荷复合和有限可见光吸收的严重缺点,在过去的几十年中已经开发了许多策略,其中最广泛使用的一种是开发光催化异质结。本综述试图总结合理设计和制备异质结光催化剂的最新进展,如半导体-半导体异质结、半导体-金属异质结、半导体-碳异质结和多组分异质结。还讨论了这四个结系统的光催化性能与环境和能源应用(如污染物降解、氢气生成和光催化消毒)之间的关系。本综述以对这一令人兴奋且仍在不断发展的研究领域的挑战和新方向的总结和展望结束。

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