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镍催化的迁移交叉偶联反应:选择性C-H官能团化的新机遇。

Nickel-Catalyzed Migratory Cross-Coupling Reactions: New Opportunities for Selective C-H Functionalization.

作者信息

Wang You, He Yuli, Zhu Shaolin

机构信息

State Key Laboratory of Coordination Chemistry, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210093, China.

State Key Laboratory of Natural Medicines (SKLNM) and Department of Medicinal Chemistry, School of Pharmacy, China Pharmaceutical University, Nanjing 210009, China.

出版信息

Acc Chem Res. 2023 Dec 5;56(23):3475-3491. doi: 10.1021/acs.accounts.3c00540. Epub 2023 Nov 16.

Abstract

ConspectusMigratory cross-coupling via metal migration is a process of significant academic and industrial interest. It provides an attractive alternative for the selective installation of a functional group at remote C-H positions from simple precursors, thus enabling the direct synthesis of challenging structures not accessible with traditional cross-coupling. In particular, with the merger of 1,-Ni/H shift and cross-coupling of nickel, the Ni-catalyzed migratory functionalization of simple precursors has undergone particularly intense development and emerged as a valuable field of research in the past few years. This Account will outline the recent progress made in this arena in terms of migration-functionalization modes, diverse functionalizations, and strategies for regio- and stereocontrol. Mechanistic studies and synthetic applications are also discussed.In detail, we systematically categorize our work into two parts based on the migration modes. In the first part, a platform is created for Ni-catalyzed migratory sp C-H functionalization of alkenes or alkyl halides via iterative 1,2-Ni/H shift-selective cross-coupling. The key reactive Ni(II)H species for chain-walking could be generated either in a polarity-reversed fashion relying on stoichiometric reductants (X-Ni(II)-H) or in a redox-neutral fashion with the participation of nucleophilic coupling partners (FG-Ni(II)-H). One significant advantage associated with the polarity-reversed NiH system is the use of relatively stable, abundant, and safe olefin surrogates or alkyl halides instead of the sensitive organometallics required in traditional cross-coupling reactions. Another advantage is that diverse functionalizations, including carbonation and more challenging amination and thiolation could be smoothly achieved with suitable electrophiles or their precursors. Finally, to address the challenging multifaceted selectivity and reactivity issues in asymmetric migratory cross-coupling reactions, we have developed a feasible ligand relay catalytic strategy. In this dynamic ligand exchange process, one ligand promotes rapid migration while the other promotes highly regio- and stereoselective coupling. This innovative strategy overcomes the formidable challenge stemming from the difficulty of designing a single ligand to efficiently promote both steps of chain-walking and asymmetric coupling. In the second part, a new platform for Ni-catalyzed migratory sp C-H functionalization via 1,4-Ni/H shift-selective cross-coupling has been reported. Starting from readily available aryl or vinyl coupling partners, the -generated aryl- or vinylnickel(II) species could undergo a rapid and reversible 1,4-Ni/H shift along an sp backbone, and subsequent selective coupling with various coupling partners would allow regio- and stereoselective access to diverse 1,4-migratory functionalization products. The key to success was the discovery of an appropriate ligand to efficiently promote both migration and subsequent selective cross-coupling. A vinyl-to-aryl 1,4-Ni/H shift successfully enables the modular / difunctionalization of aryl coupling partners, while an aryl-to-vinyl 1,4-Ni/H shift enables regio- and stereoselective access to functionalized trisubstituted alkenes.We hope that this Account will inspire broad interest and future development of migratory cross-coupling reactions. We strongly believe that continued efforts in this fascinating field will overcome many of the remaining challenges, including cutting-edge ligand/catalyst design to enhance reactivity and selectivity, conceptually new migration modes for additional transformations, and in-depth mechanistic studies for rational reaction design.

摘要

概述

通过金属迁移实现的迁移交叉偶联是一个具有重大学术和工业价值的过程。它为从简单前体在远程C-H位置选择性安装官能团提供了一种有吸引力的替代方法,从而能够直接合成传统交叉偶联无法获得的具有挑战性的结构。特别是,随着1, -Ni/H迁移与镍交叉偶联的结合,镍催化的简单前体的迁移官能化在过去几年中得到了特别深入的发展,并成为一个有价值的研究领域。本综述将概述该领域在迁移官能化模式、多样化官能化以及区域和立体控制策略方面的最新进展。还将讨论机理研究和合成应用。

详细地说,我们根据迁移模式将我们的工作系统地分为两部分。在第一部分中,通过迭代的1,2-Ni/H迁移-选择性交叉偶联,为镍催化的烯烃或卤代烃的迁移sp C-H官能化创建了一个平台。用于链行走的关键反应性Ni(II)H物种可以通过依赖化学计量还原剂(X-Ni(II)-H)以极性反转的方式产生,或者在亲核偶联伙伴(FG-Ni(II)-H)参与下以氧化还原中性的方式产生。与极性反转的NiH系统相关的一个显著优点是使用相对稳定、丰富且安全的烯烃替代物或卤代烃代替传统交叉偶联反应中所需的敏感有机金属化合物。另一个优点是,使用合适的亲电试剂或其前体可以顺利实现包括羧基化以及更具挑战性的胺化和硫醇化在内的多种官能化。最后,为了解决不对称迁移交叉偶联反应中具有挑战性的多方面选择性和反应性问题,我们开发了一种可行的配体接力催化策略。在这个动态配体交换过程中,一种配体促进快速迁移,而另一种配体促进高度区域和立体选择性偶联。这种创新策略克服了由于难以设计单个配体来有效促进链行走和不对称偶联的两个步骤而带来的巨大挑战。在第二部分中,已经报道了通过1,4-Ni/H迁移-选择性交叉偶联实现镍催化的迁移sp C-H官能化的新平台。从容易获得的芳基或乙烯基偶联伙伴开始,生成的芳基或乙烯基镍(II)物种可以沿着sp主链进行快速且可逆的1,4-Ni/H迁移,并随后与各种偶联伙伴进行选择性偶联,从而实现区域和立体选择性地获得各种1,4-迁移官能化产物。成功的关键是发现一种合适的配体,以有效促进迁移和随后的选择性交叉偶联。乙烯基到芳基的1,4-Ni/H迁移成功地实现了芳基偶联伙伴的模块化/双官能化,而芳基到乙烯基的1,4-Ni/H迁移实现了区域和立体选择性地获得官能化三取代烯烃。

我们希望本综述能够激发人们对迁移交叉偶联反应的广泛兴趣和未来发展。我们坚信,在这个迷人的领域继续努力将克服许多剩余挑战,包括设计前沿配体/催化剂以提高反应性和选择性、用于额外转化的概念上新的迁移模式以及用于合理反应设计的深入机理研究。

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