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过渡金属催化的C-H/C-C活化以及与1,3-二炔的偶联反应

Transition metal-catalyzed C-H/C-C activation and coupling with 1,3-diyne.

作者信息

Pati Bedadyuti Vedvyas, Puthalath Nitha Nahan, Banjare Shyam Kumar, Nanda Tanmayee, Ravikumar Ponneri C

机构信息

School of Chemical Sciences, National Institute of Science Education and Research (NISER), Odisha 752050, India.

Homi Bhabha National Institute, Training School Complex, Anushaktinagar, Mumbai 400094, India.

出版信息

Org Biomol Chem. 2023 Apr 5;21(14):2842-2869. doi: 10.1039/d3ob00238a.

Abstract

This review provides a broad overview of the recent developments in the field of transition metal-catalyzed C-H/C-C bond activation and coupling with 1,3-diyne for assembling alkynylated heterocycles, bis-heterocycles, and 1,3-enynes. Transition metal-catalyzed inert bond (C-H/C-C) activation has been the focus of attention among synthetic chemists in recent times. Enormous developments have taken place in C-H/C-C bond activation chemistry in the last two decades. In recent years the use of 2π-unsaturated units as coupling partners for the synthesis of heterocycles through C-H/C-C bond activation and annulation sequence has received immense attention. Among the unsaturated units employed for assembling heterocycles, the use of 1,3-diynes has garnered significant attention due to its ability to render bis-heterocycles in a straightforward manner. The C-H bond activation and coupling with 1,3-diyne has been very much explored in recent years. However, the development of strategies for the use of 1,3-diynes in the analogous C-C bond activation chemistry is less explored. Earlier methods employed to assemble bis-heterocycle used heterocycles that were preformed and pre-functionalized transition metal-catalyzed coupling reactions. The expensive pre-functionalized halo-heterocycles and sensitive and expensive heterocyclic metal reagents limit its broad application. However, the transition metal-catalyzed C-H activation obviates the need for expensive heterocyclic metal reagents and pre-functionalized halo-heterocycles. The C-H bond activation strategy makes use of C-H bonds as functional groups for effecting the transformation. This renders the overall synthetic sequence both step and cost economic. Hence, this strategy of C-H activation and subsequent reaction with 1,3-diyne could be used for the larger-scale synthesis of chemicals in the pharmaceutical industry. Despite these advances, there is still the possibility of exploration of earth-abundant and cost-effective first-row transition metals (Ni, Cu, Mn. Fe, .) for the synthesis of bis-heterocycles. Moreover, the Cp*-ligand-free, simple metal-salt-mediated synthesis of bis-heterocycles is also less explored. Thus, more exploration of reaction conditions for the Cp*-free synthesis of bis-heterocycles is called for. We hope this review will inspire scientists to investigate these unexplored domains.

摘要

本综述广泛概述了过渡金属催化的C-H/C-C键活化以及与1,3-二炔偶联以组装炔基化杂环、双杂环和1,3-烯炔领域的最新进展。过渡金属催化的惰性键(C-H/C-C)活化是近年来合成化学家关注的焦点。在过去二十年中,C-H/C-C键活化化学取得了巨大进展。近年来,通过C-H/C-C键活化和环化序列使用2π-不饱和单元作为合成杂环的偶联伙伴受到了极大关注。在用于组装杂环的不饱和单元中,1,3-二炔的使用因其能够直接生成双杂环而备受关注。近年来,C-H键活化与1,3-二炔的偶联已得到广泛探索。然而,在类似的C-C键活化化学中使用1,3-二炔的策略开发较少。早期用于组装双杂环的方法使用预先形成和预官能化的杂环进行过渡金属催化的偶联反应。昂贵的预官能化卤代杂环以及敏感且昂贵的杂环金属试剂限制了其广泛应用。然而,过渡金属催化的C-H活化无需昂贵的杂环金属试剂和预官能化卤代杂环。C-H键活化策略利用C-H键作为官能团来实现转化。这使得整个合成序列在步骤和成本上都具有经济性。因此,这种C-H活化策略以及随后与1,3-二炔的反应可用于制药行业中化学品的大规模合成。尽管有这些进展,但仍有可能探索储量丰富且成本效益高的第一行过渡金属(镍、铜、锰、铁等)用于合成双杂环。此外,无Cp配体、简单金属盐介导的双杂环合成也较少被探索。因此,需要更多地探索无Cp合成双杂环的反应条件。我们希望本综述能激发科学家们对这些未探索领域的研究。

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