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钯催化通过双C-H键活化实现位点选择性酰苯胺和苯甲酰胺型[3+2]环化反应的计算研究

Computational Insights into Palladium-Catalyzed Site-Selective Anilide and Benzamide-Type [3+2] Annulation via Double C-H Bond Activation.

作者信息

Mondal Partha, Mandal Nilangshu, Pal Arun K, Datta Ayan

机构信息

School of Chemical Sciences, Indian Association for the Cultivation of Science, Jadavpur 700032, West Bengal, India.

出版信息

J Org Chem. 2024 Aug 16;89(16):11371-11379. doi: 10.1021/acs.joc.4c01049. Epub 2024 Jul 29.

Abstract

The mechanism of palladium-catalyzed annulation reactions of benzamide- and anilide-type aromatic systems with maleimides is investigated using density functional theory. Double C-H bond activation is key to forming the desired annulation product. The first C-H bond activation for anilide- and amide-type ligands can occur at the and benzylic C-H bonds, while the second C-H activation occurs at the carbon of the aromatic rings. For the anilide-type system, and benzylic C-H bond activations occur via four- and five-membered palladacycles, respectively. In contrast, for the benzamide-type system, and benzylic C-H bond activations occur via five- and six-membered palladacycles, respectively. The energy span model suggests that the initial C-H bond activation step at the benzylic position determines the turnover frequency for both anilide- and benzamide-type systems. Energy decomposition analysis and distortion-interaction/activation-strain analyses are employed to understand the electronic and steric factors controlling the turnover frequency-determining transition state.

摘要

采用密度泛函理论研究了钯催化苯甲酰胺和苯胺型芳香体系与马来酰亚胺的环化反应机理。双C-H键活化是形成所需环化产物的关键。苯胺型和酰胺型配体的第一次C-H键活化可发生在 和苄基C-H键处,而第二次C-H活化发生在芳环的 碳上。对于苯胺型体系, 和苄基C-H键活化分别通过四元和五元钯环进行。相比之下,对于苯甲酰胺型体系, 和苄基C-H键活化分别通过五元环和六元钯环进行。能量跨度模型表明,苄基位置的初始C-H键活化步骤决定了苯胺型和苯甲酰胺型体系的周转频率。采用能量分解分析和畸变-相互作用/活化应变分析来理解控制周转频率决定过渡态的电子和空间因素。

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