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锆茂和光氧化还原催化实现苄基氯的催化还原均偶联反应

Catalytic Reductive Homocoupling of Benzyl Chlorides Enabled by Zirconocene and Photoredox Catalysis.

作者信息

Tajima Ryota, Tanaka Keisuke, Aida Kazuhiro, Ota Eisuke, Yamaguchi Junichiro

机构信息

Department of Applied Chemistry, Waseda University, 513 Wasedatsurumakicho, Shinjuku, Tokyo 162-0041, Japan.

Waseda Institute for Advanced Study, Waseda University, 513 Wasedatsurumakicho, Shinjuku, Tokyo 162-0041, Japan.

出版信息

Precis Chem. 2024 Nov 7;3(1):43-50. doi: 10.1021/prechem.4c00077. eCollection 2025 Jan 27.

Abstract

The bibenzyl skeleton is prevalent in numerous natural products and other biologically active compounds. Radical homocoupling provides a straightforward approach for synthesizing bibenzyls in a single step with the reductive homocoupling of benzyl halides undergoing extensive development. Unlike benzyl bromides and other tailored precursors used in visible-light-mediated homocoupling, benzyl chlorides offer greater abundance and chemical stability. Nevertheless, achieving chemoselective cleavage of the C-Cl bond poses significant challenges, with only a limited number of studies reported to date. Herein, we demonstrate a catalytic reductive homocoupling of benzyl chlorides facilitated by zirconocene and photoredox catalysis. This cooperative catalytic system promotes C-Cl bond cleavage in benzyl chlorides under mild conditions and supports the homocoupling of a wide range of benzyl chlorides, including those derived from pharmaceutical agents. Our preliminary mechanistic investigations highlight the pivotal role of hydrosilane in the catalytic cycle.

摘要

联苄骨架存在于众多天然产物和其他生物活性化合物中。自由基均偶联为一步合成联苄提供了一种直接的方法,苄基卤化物的还原均偶联正得到广泛发展。与用于可见光介导均偶联的苄基溴和其他定制前体不同,苄基氯具有更高的丰度和化学稳定性。然而,实现C-Cl键的化学选择性裂解面临重大挑战,迄今为止仅有有限数量的研究报道。在此,我们展示了一种由二茂锆和光氧化还原催化促进的苄基氯催化还原均偶联反应。这种协同催化体系在温和条件下促进苄基氯中的C-Cl键裂解,并支持多种苄基氯的均偶联反应,包括那些衍生自药物制剂的苄基氯。我们初步的机理研究突出了硅烷在催化循环中的关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/804d/11775857/26e05cfacd83/pc4c00077_0001.jpg

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