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当金属催化的C-H官能化与可见光光催化相遇时。

When metal-catalyzed C-H functionalization meets visible-light photocatalysis.

作者信息

Guillemard Lucas, Wencel-Delord Joanna

机构信息

Laboratoire d'Innovation Moléculaire et Applications (UMR CNRS 7042), Université de Strasbourg/Université de Haute-Alsace, ECPM, 25 rue Becquerel, 67087, Strasbourg, France.

出版信息

Beilstein J Org Chem. 2020 Jul 21;16:1754-1804. doi: 10.3762/bjoc.16.147. eCollection 2020.

Abstract

While aiming at sustainable organic synthesis, over the last decade particular attention has been focused on two modern fields, C-H bond activation, and visible-light-induced photocatalysis. Couplings through C-H bond activation involve the use of non-prefunctionalized substrates that are directly converted into more complex molecules, without the need of a previous functionalization, thus considerably reduce waste generation and a number of synthetic steps. In parallel, transformations involving photoredox catalysis promote radical reactions in the absence of radical initiators. They are conducted under particularly mild conditions while using the visible light as a cheap and economic energy source. In this way, these strategies follow the requirements of environment-friendly chemistry. Regarding intrinsic advantages as well as the complementary mode of action of the two catalytic transformations previously introduced, their merging in a synergistic dual catalytic system is extremely appealing. In that perspective, the scope of this review aims to present innovative reactions combining C-H activation and visible-light induced photocatalysis.

摘要

在致力于可持续有机合成的过程中,过去十年里,人们特别关注两个现代领域:C-H键活化和可见光诱导光催化。通过C-H键活化进行的偶联反应涉及使用未预官能化的底物,这些底物可直接转化为更复杂的分子,无需预先官能化,从而大大减少了废物产生和合成步骤的数量。与此同时,涉及光氧化还原催化的转化反应在没有自由基引发剂的情况下促进自由基反应。它们在特别温和的条件下进行,同时使用可见光作为廉价且经济的能源。通过这种方式,这些策略符合环境友好化学的要求。鉴于先前介绍的两种催化转化反应的内在优势以及互补的作用模式,将它们合并到一个协同双催化体系中极具吸引力。从这个角度来看,本综述的范围旨在介绍结合C-H活化和可见光诱导光催化的创新反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67ed/7385395/59a56c81a107/Beilstein_J_Org_Chem-16-1754-g052.jpg

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