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光催化与铜催化的结合:不对称多组分自由基交叉偶联反应的新机遇

Photocatalysis Meets Copper Catalysis: A New Opportunity for Asymmetric Multicomponent Radical Cross-Coupling Reactions.

作者信息

Wang Peng-Zi, Zhang Bin, Xiao Wen-Jing, Chen Jia-Rong

机构信息

Engineering Research Center of Photoenergy Utilization for Pollution Control and Carbon Reduction, Ministry of Education, College of Chemistry, Central China Normal University, 152 Luoyu Road, Wuhan, Hubei 430079, China.

Wuhan Institute of Photochemistry and Technology, 7 North Bingang Road, Wuhan, Hubei 430083, China.

出版信息

Acc Chem Res. 2024 Dec 3;57(23):3433-3448. doi: 10.1021/acs.accounts.4c00638. Epub 2024 Nov 13.

Abstract

ConspectusIn recent years, radical-mediated cross-coupling reactions have emerged as a compelling strategy for achieving a rich diversity in molecular topologies under benign conditions. However, the inherent high reactivity of radicals presents considerable challenges in controlling reaction pathways and selectivity, which often results in a limited range of substrates and a constrained reaction profile. Given the capacity of visible-light photoredox catalysis to generate a wide variety of reactive radicals and radical ions in a controlled manner and the propensity of copper complexes toward radical species, we envisaged that the synergy between chiral copper catalysts and photoactive catalysts would pave the way for developing innovative strategies. This integration is poised to unlock a broad spectrum of enantioselective multicomponent radical cross-coupling reactions.In this Account, we describe our insights and recent efforts in the realm of enantioselective multicomponent radical cross-coupling reactions. These advancements have been achieved through the innovative application of dual photoredox/copper catalysis or bifunctional copper catalysis under visible light irradiation. Our work is systematically divided into two sections based on the activation modes. The first section focuses on photoinduced copper-catalyzed chiral C-C and C-O bond formation through a radical addition/nucleophilic trap sequence. Our discussion of chiral C-C bond formation is particularly concentrated on the asymmetric carbocyanation and carboarylation of vinylarenes, 1,3-enynes, and 1,3-dienes. Our findings underscore that irradiation with visible light can adeptly modulate the pace of radical generation, thus orchestrating consecutive reaction stages and ensuring the attainment of both chemo- and stereoselectivity. In the domain of chiral C-O bond formation, leveraging carboxylic acids as a nucleophilic oxygen source, we introduce a suite of esterification reactions of benzylic, allylic, and propargylic radicals. These radicals are derived from a variety of radical precursors, showcasing the versatility of our approach. The following section highlights our innovative discovery in the field of dual photoredox/copper catalysis, which enables enantioselective three-component radical transformations via the direct activation of aromatic alkenes. This methodology begins with the generation of formal distonic radical anions through the photocatalytic single-electron reduction of aromatic alkenes, thus, enabling orthogonal reactivity. Employing HO, DO, and CO as external electrophile agents, we have developed three types of radical cyanofunctionalization reactions: hydrocyanation, deuteriocyanation, and cyanocarboxylation. These reactions provide practical access to diversely functionalized chiral nitriles with high enantiomeric excess.Collectively, these synthetic methodologies highlight the immense potential inherent in the synergistic integration of photocatalysis and asymmetric copper catalysis. This Account aspires to deepen our comprehension of the advantages conferred by these catalytic systems, elucidating the crucial role of photocatalysis in facilitating enantioselective multicomponent radical cross-couplings. We anticipate that this Account will provide valuable insights and stimulate the evolution of innovative methodologies within this rapidly expanding field.

摘要

综述

近年来,自由基介导的交叉偶联反应已成为一种引人注目的策略,可在温和条件下实现分子拓扑结构的丰富多样性。然而,自由基固有的高反应活性在控制反应途径和选择性方面带来了巨大挑战,这通常导致底物范围有限和反应模式受限。鉴于可见光光氧化还原催化能够以可控方式生成多种活性自由基和自由基离子,以及铜配合物对自由基物种的倾向性,我们设想手性铜催化剂与光活性催化剂之间的协同作用将为开发创新策略铺平道路。这种整合有望开启一系列对映选择性多组分自由基交叉偶联反应。

在本综述中,我们描述了我们在对映选择性多组分自由基交叉偶联反应领域的见解和近期工作。这些进展是通过在可见光照射下对偶光氧化还原/铜催化或双功能铜催化的创新应用实现的。我们的工作根据活化模式系统地分为两个部分。第一部分重点介绍通过自由基加成/亲核捕获序列进行的光诱导铜催化手性C-C和C-O键形成。我们对手性C-C键形成的讨论特别集中在乙烯基芳烃、1,3-烯炔和1,3-二烯的不对称碳氰化和碳芳基化上。我们的研究结果强调,可见光照射可以巧妙地调节自由基生成的速度,从而协调连续的反应阶段,并确保实现化学选择性和立体选择性。在手性C-O键形成领域,利用羧酸作为亲核氧源,我们介绍了一系列苄基、烯丙基和炔丙基自由基的酯化反应。这些自由基源自多种自由基前体,展示了我们方法的通用性。下一部分重点介绍我们在双光氧化还原/铜催化领域的创新发现,该发现通过芳香烯烃的直接活化实现对映选择性三组分自由基转化。该方法始于通过芳香烯烃的光催化单电子还原生成形式上的双自由基阴离子,从而实现正交反应性。使用HO、DO和CO作为外部亲电试剂,我们开发了三种类型的自由基氰基官能团化反应:氢氰化、氘代氰化和氰基羧化。这些反应为获得具有高对映体过量的各种功能化手性腈提供了实用途径。

总的来说,这些合成方法突出了光催化与不对称铜催化协同整合所固有的巨大潜力。本综述旨在加深我们对这些催化体系所带来优势的理解,阐明光催化在促进对映选择性多组分自由基交叉偶联中的关键作用。我们预计本综述将提供有价值的见解,并刺激这个快速发展领域中创新方法的发展。

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