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钪催化烯丙基C-H活化实现1,1-二取代烯烃的()-选择性异构化

()-Selective Isomerization of 1,1-Disubstituted Alkenes by Scandium-Catalyzed Allylic C-H Activation.

作者信息

Lou Shao-Jie, Wang Pan, Wen Xin, Mishra Aniket, Cong Xuefeng, Zhuo Qingde, An Kun, Nishiura Masayoshi, Luo Yi, Hou Zhaomin

机构信息

Advanced Catalysis Research Group, RIKEN Center for Sustainable Resource Science, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

Organometallic Chemistry Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

出版信息

J Am Chem Soc. 2024 Oct 2;146(39):26766-26776. doi: 10.1021/jacs.4c06899. Epub 2024 Sep 20.

Abstract

The isomerization of 1,1-disubstituted alkenes through 1,3-hydrogen shift is an atom-efficient route for synthesizing trisubstituted alkenes, which are important moieties in many natural products, pharmaceuticals, and organic materials. However, this reaction often encounters regio- and stereoselectivity challenges, typically yielding /-mixtures of the alkene products or thermodynamically favored ()-alkenes. Herein, we report the ()-selective isomerization of 1,1-disubstituted alkenes to trisubstituted ()-alkenes via the regio- and stereospecific activation of an allylic C-H bond. The key to the success of this unprecedented transformation is the use of a sterically demanding half-sandwich scandium catalyst in combination with a bulky quinoline compound, 2--butylquinoline. Deuterium-labeling experiments and density functional theory (DFT) calculations have revealed that 2--butylquinoline not only facilitates the C═C bond transposition through hydrogen shuttling but also governs the regio- and stereoselectivity due to the steric hindrance of the -butyl group. This protocol enables the synthesis of diverse ()-configured acyclic trisubstituted alkenes and endocyclic trisubstituted alkenes from readily accessible 1,1-disubstituted alkenes. It offers an efficient and selective route for preparing a new family of synthetically challenging ()-trisubstituted alkenes with broad substrate scope, 100% atom efficiency, high regio- and stereoselectivity, and an unprecedented reaction mechanism.

摘要

通过1,3-氢迁移实现的1,1-二取代烯烃异构化是合成三取代烯烃的原子经济路线,三取代烯烃是许多天然产物、药物和有机材料中的重要部分。然而,该反应常常面临区域和立体选择性挑战,通常生成烯烃产物的顺反混合物或热力学上更稳定的(E)-烯烃。在此,我们报道了通过烯丙基C-H键的区域和立体特异性活化,将1,1-二取代烯烃(Z)-选择性异构化为三取代(Z)-烯烃。这一前所未有的转化成功的关键在于使用空间位阻较大的半夹心钪催化剂与体积庞大的喹啉化合物2-叔丁基喹啉相结合。氘代标记实验和密度泛函理论(DFT)计算表明,2-叔丁基喹啉不仅通过氢穿梭促进C═C键的转位,而且由于叔丁基的空间位阻控制了区域和立体选择性。该方法能够从易于获得的1,1-二取代烯烃合成各种(Z)构型的无环三取代烯烃和环内三取代烯烃。它为制备一类新的具有挑战性的(Z)-三取代烯烃提供了一条高效且选择性的路线,该路线底物范围广、原子利用率达100%、区域和立体选择性高且反应机理前所未有的。

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