解密 Ru(II)-Catalyzed C-H Annulation of N-Chlorobenzamides with 1,3-Diynes 中 N-氯苯甲酰胺与 1,3-Diynes 区域选择性的起源

IF 3.6 2区 化学 Q1 CHEMISTRY, ORGANIC
Janavi Rajput, Arijit Ghosh, Amit B. Pawar* and Bhaskar Mondal*, 
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引用次数: 0

摘要

在过渡金属催化的 1,3-二炔 C-H 活化/annulation 反应中,理解反应机理和区域选择性的起源一直是一个引人入胜的挑战。在这篇文章中,为了建立其机理并破译区域选择性的起源,我们报告了对最近开发的 Ru(II) 催化的 N-氯苯甲酰胺与 1,3-二炔的[4 + 2]环化反应进行的详细计算密度泛函理论机理研究,以合成 3-炔化异喹喏酮衍生物。我们的计算揭示了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,Ru(对伞花烯)分子的迁移插入步骤和协同还原消除/氧化加成以形成 N-C 键导致 3-alkynylated 产物分别是决定选择性和速率的步骤。最后,利用活化-应变模型进行的变形/相互作用分析表明,立体效应是观察到的 3-炔基化产物形成区域选择性的决定因素。总之,通过计算获得的有关 C-H 活化/环化反应催化机理和区域选择性起源的关键见解,可用于指导合理设计和开发用于杂环合成的新型转化策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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

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

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

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 N-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(p-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.

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来源期刊
Journal of Organic Chemistry
Journal of Organic Chemistry 化学-有机化学
CiteScore
6.20
自引率
11.10%
发文量
1467
审稿时长
2 months
期刊介绍: Journal of Organic Chemistry welcomes original contributions of fundamental research in all branches of the theory and practice of organic chemistry. In selecting manuscripts for publication, the editors place emphasis on the quality and novelty of the work, as well as the breadth of interest to the organic chemistry community.
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