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解析钌(II)催化的α-氯苯甲酰胺与1,3-二炔的C-H环化反应中区域选择性的起源

Deciphering the Origin of Regioselectivity in Ru(II)-Catalyzed C-H Annulation of -Chlorobenzamides with 1,3-Diynes.

作者信息

Rajput Janavi, Ghosh Arijit, Pawar Amit B, Mondal Bhaskar

机构信息

School of Chemical Sciences, Indian Institute of Technology Mandi, Kamand, Himachal Pradesh 175005, India.

出版信息

J Org Chem. 2024 May 17;89(10):6838-6846. doi: 10.1021/acs.joc.4c00209. Epub 2024 May 3.

DOI:10.1021/acs.joc.4c00209
PMID:38700910
Abstract

Understanding the reaction mechanism and origin of regioselectivity in transition metal-catalyzed C-H activation/annulation reactions with 1,3-diynes has remained an intriguing challenge. In this article, to establish the mechanism and decipher the origin of regioselectivity, we report a detailed computational density functional theory-based mechanistic investigation on the recently developed Ru(II)-catalyzed [4 + 2] annulation of -chlorobenzamides with 1,3-diynes for the synthesis of 3-alkynylated isoquinolone derivatives. Our calculations reveal a redox-neutral pathway for the annulation reaction. The stepwise analysis of the reaction channels indicates the migratory insertion step and the concerted reductive elimination/oxidative addition of the Ru(-cymene) moiety to form the N-C bond leading to the 3-alkynylated product to be the selectivity- and rate-determining steps, respectively. Finally, the distortion/interaction analysis using the activation-strain model suggests the steric effect as the determining factor for the observed regioselectivity for the formation of the 3-alkynylated product. Overall, the computationally obtained key insights into the catalytic mechanism and the origin of regioselectivity in the C-H activation/annulation reaction can be used as a guide to rationally design and develop novel transformation strategies for heterocycle synthesis.

摘要

理解过渡金属催化的与1,3 - 二炔发生的C - H活化/环化反应中的反应机理和区域选择性起源,仍然是一个极具吸引力的挑战。在本文中,为了确立机理并解读区域选择性的起源,我们报道了一项基于密度泛函理论的详细机理计算研究,该研究针对最近开发的Ru(II)催化的 - 氯苯甲酰胺与1,3 - 二炔的[4 + 2]环化反应,用于合成3 - 炔基化异喹啉酮衍生物。我们的计算揭示了该环化反应的氧化还原中性途径。对反应通道的逐步分析表明,迁移插入步骤以及Ru(- 异丙苯)部分协同进行的还原消除/氧化加成以形成N - C键从而生成3 - 炔基化产物,分别是选择性和速率决定步骤。最后,使用活化应变模型进行的畸变/相互作用分析表明,空间效应是观察到的形成3 - 炔基化产物区域选择性的决定性因素。总体而言,通过计算获得的关于C - H活化/环化反应中催化机理和区域选择性起源的关键见解,可作为合理设计和开发用于杂环合成的新型转化策略的指南。

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