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半导体光催化--机理与合成方面。

Semiconductor photocatalysis--mechanistic and synthetic aspects.

机构信息

Department Chemie und Pharmazie, Universität Erlangen-Nürnberg, Egerlandstrasse 1, 91058 Erlangen, Germany.

出版信息

Angew Chem Int Ed Engl. 2013 Jan 14;52(3):812-47. doi: 10.1002/anie.201201200. Epub 2012 Dec 4.

Abstract

Preceding work on photoelectrochemistry at semiconductor single-crystal electrodes has formed the basis for the tremendous growth in the three last decades in the field of photocatalysis at semiconductor powders. The reason for this is the unique ability of inorganic semiconductor surfaces to photocatalyze concerted reduction and oxidation reactions of a large variety of electron-donor and -acceptor substrates. Whereas great attention was paid to water splitting and the exhaustive aerobic degradation of pollutants, only a small amount of research also explored synthetic aspects. After introducing the basic mechanistic principles, standard experiments for the preparation and characterization of visible light active photocatalysts as well as the investigation of reaction mechanisms are discussed. Novel atom-economic C-C and C-N coupling reactions illustrate the relevance of semiconductor photocatalysis for organic synthesis, and demonstrate that the multidisciplinary field combines classical photochemistry with electrochemistry, solid-state chemistry, and heterogeneous catalysis.

摘要

在半导体单晶电极的光电化学方面的前期工作为过去三十年中半导体粉末光催化领域的巨大发展奠定了基础。原因在于无机半导体表面具有独特的能力,可以协同催化多种电子给体和受体底物的还原和氧化反应。虽然人们非常关注水的分解和污染物的有氧彻底降解,但只有少量的研究也探索了合成方面。在介绍了基本的机理原理之后,讨论了可见光活性光催化剂的制备和表征的标准实验以及反应机理的研究。新型原子经济性 C-C 和 C-N 偶联反应说明了半导体光催化在有机合成中的相关性,并证明了多学科领域将经典光化学与电化学、固态化学和多相催化相结合。

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