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光化学脂肪族碳氢键活化实现的镍催化对映选择性烯烃双碳官能团化反应

Nickel-catalysed enantioselective alkene dicarbofunctionalization enabled by photochemical aliphatic C-H bond activation.

作者信息

Hu Xia, Cheng-Sánchez Iván, Kong Wangqing, Molander Gary A, Nevado Cristina

机构信息

Department of Chemistry, University of Zurich, Zurich, Switzerland.

The Institute for Advanced Studies, Wuhan University, Wuhan, China.

出版信息

Nat Catal. 2024;7(6):655-665. doi: 10.1038/s41929-024-01153-0. Epub 2024 Apr 29.

Abstract

The development of novel strategies to rapidly construct complex chiral molecules from readily available feedstocks is a long-term pursuit in the chemistry community. Radical-mediated alkene difunctionalizations represent an excellent platform towards this goal. However, asymmetric versions remain highly challenging, and more importantly, examples featuring simple hydrocarbons as reaction partners are elusive. Here we report an asymmetric three-component alkene dicarbofunctionalization capitalizing on the direct activation of C( )-H bonds through the combination of photocatalysed hydrogen atom transfer and nickel catalysis. This protocol provides an efficient platform for installing two vicinal carbon-carbon bonds across alkenes in an atom-economic fashion, providing a wide array of high-value chiral α-aryl/alkenyl carbonyls and phosphonates, as well as 1,1-diarylalkanes from ubiquitous alkane, ether and alcohol feedstocks. This method exhibits operational simplicity, broad substrate scope and excellent regioselectivity, chemoselectivity and enantioselectivity. The compatibility with bioactive motifs and expedient synthesis of pharmaceutically relevant molecules highlight the synthetic potential of this protocol.

摘要

从易得的原料快速构建复杂手性分子的新策略的开发,是化学界长期以来的追求。自由基介导的烯烃双官能化是实现这一目标的出色平台。然而,不对称版本仍然极具挑战性,更重要的是,以简单烃类作为反应伙伴的例子很少见。在此,我们报告了一种不对称三组分烯烃双碳官能化反应,该反应利用光催化氢原子转移和镍催化相结合的方式直接活化C()-H键。该方案提供了一个高效的平台,以原子经济的方式在烯烃上安装两个相邻的碳-碳键,从常见的烷烃、醚和醇原料中提供多种高价值的手性α-芳基/烯基羰基化合物和膦酸酯,以及1,1-二芳基烷烃。该方法操作简单,底物范围广,具有出色的区域选择性、化学选择性和对映选择性。与生物活性基序的兼容性以及药物相关分子的便捷合成突出了该方案的合成潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b312/11208155/0a28dc0d2c53/41929_2024_1153_Fig1_HTML.jpg

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