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温和条件下通过促进还原消除实现的镍催化C-杂原子交叉偶联反应

Nickel-Catalyzed C-Heteroatom Cross-Coupling Reactions under Mild Conditions via Facilitated Reductive Elimination.

作者信息

Zhu Chen, Yue Huifeng, Jia Jiaqi, Rueping Magnus

机构信息

KAUST Catalysis Center (KCC), King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.

出版信息

Angew Chem Int Ed Engl. 2021 Aug 9;60(33):17810-17831. doi: 10.1002/anie.202013852. Epub 2021 Feb 25.

DOI:10.1002/anie.202013852
PMID:33252192
Abstract

The formation of C-heteroatom bonds represents an important type of bond-forming reaction in organic synthesis and often provides a fast and efficient access to privileged structures found in pharmaceuticals, agrochemical and materials. In contrast to conventional Pd- or Cu-catalyzed C-heteroatom cross-couplings under high-temperature conditions, recent advances in homo- and heterogeneous Ni-catalyzed C-heteroatom formations under mild conditions are particularly attractive from the standpoint of sustainability and practicability. The generation of Ni and excited Ni intermediates facilitate the reductive elimination step to achieve mild cross-couplings. This review provides an overview of the state-of-the-art approaches for mild C-heteroatom bond formations and highlights the developments in photoredox and nickel dual catalysis involving SET and energy transfer processes; photoexcited nickel catalysis; electro and nickel dual catalysis; heterogeneous photoredox and nickel dual catalysis involving graphitic carbon nitride (mpg-CN), metal organic frameworks (MOFs) or semiconductor quantum dots (QDs); as well as more conventional zinc and nickel dual catalyzed reactions.

摘要

碳-杂原子键的形成是有机合成中一种重要的成键反应类型,常常能快速高效地构建药物、农用化学品和材料中常见的优势结构。与高温条件下传统的钯或铜催化的碳-杂原子交叉偶联反应不同,近年来均相和非均相镍催化在温和条件下形成碳-杂原子键的进展,从可持续性和实用性角度来看特别具有吸引力。镍及激发态镍中间体的生成有助于还原消除步骤,从而实现温和的交叉偶联反应。本综述概述了温和条件下形成碳-杂原子键的最新方法,并重点介绍了光氧化还原与镍双催化(涉及单电子转移和能量转移过程)、光激发镍催化、电化学与镍双催化、涉及石墨相氮化碳(mpg-CN)、金属有机框架(MOF)或半导体量子点(QD)的非均相光氧化还原与镍双催化,以及更传统的锌和镍双催化反应的进展。