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电化学驱动的自由基反应:从直接电解到分子催化

Electrochemically Driven Radical Reactions: From Direct Electrolysis to Molecular Catalysis.

作者信息

Chen Na, Xu Hai-Chao

机构信息

School of Medicine, Huaqiao University, Xiamen, 361021, China.

Key Laboratory of Chemical Biology of Fujian Province, State Key Laboratory of Physical Chemistry of Solid Surfaces, and College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, China.

出版信息

Chem Rec. 2021 Sep;21(9):2306-2319. doi: 10.1002/tcr.202100048. Epub 2021 Mar 18.

Abstract

Organic radicals are versatile synthetic intermediates that provide reactivities and selectivities complementary to ionic species. Despite its long history, electrochemically driven radical reactions remain limited in scope. In the past few years, there have been dramatic increase in research activity in organic electrochemistry. We have been developing electrochemical and electrophotocatalytic methods for the generation and synthetic utilization of organic radicals. In our studies, various radical species such as alkene and arene radical cations and carbon- and heteroatom-centered radicals are generated from readily available precursors through direct electrolysis, molecular electrocatalysis or molecular electrophotocatalysis. These radical species undergo various inter- and intramolecular oxidative transformations to rapidly increase molecular complexity. The simultaneous occurrence of anodic oxidation and cathodic proton reduction allows the oxidative reactions to proceed through H evolution without external chemical oxidants.

摘要

有机自由基是通用的合成中间体,其反应活性和选择性与离子物种互补。尽管电化学驱动的自由基反应历史悠久,但其范围仍然有限。在过去几年中,有机电化学的研究活动急剧增加。我们一直在开发用于有机自由基生成和合成利用的电化学和光电催化方法。在我们的研究中,通过直接电解、分子电催化或分子光电催化,从易得的前体中生成了各种自由基物种,如烯烃和芳烃自由基阳离子以及以碳和杂原子为中心的自由基。这些自由基物种经历各种分子间和分子内的氧化转化,以快速增加分子复杂性。阳极氧化和阴极质子还原的同时发生使得氧化反应能够通过析氢进行,而无需外部化学氧化剂。

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