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钯催化的脂肪族烯烃选择性 C-H 烯丙基化的详细机理研究:质子穿梭的重要影响。

Detailed Mechanistic Studies on Palladium-Catalyzed Selective C-H Olefination with Aliphatic Alkenes: A Significant Influence of Proton Shuttling.

机构信息

Department of Chemistry, Indian Institute of Technology Bombay , Powai, Mumbai 400076, India.

Chemistry Research Laboratory, University of Oxford , Mansfield Road, Oxford OX1 3TA, United Kingdom.

出版信息

J Am Chem Soc. 2017 Jan 18;139(2):763-775. doi: 10.1021/jacs.6b10309. Epub 2017 Jan 9.

Abstract

Directing group-assisted regioselective C-H olefination with electronically biased olefins is well studied. However, the incorporation of unactivated olefins has remained largely unsuccessful. A proper mechanistic understanding of olefination involving unactivated alkenes is therefore essential for enhancing their usage in future. In this Article, detailed experimental and computational mechanistic studies on palladium catalyzed C-H olefination with unactivated, aliphatic alkenes are described. The isolation of Pd(II) intermediates is shown to be effective for elucidating the elementary steps involved in catalytic olefination. Reaction rate and order determination, control experiments, isotopic labeling studies, and Hammett analysis have been used to understand the reaction mechanism. The results from these experimental studies implicate β-hydride elimination as the rate-determining step and that a mechanistic switch occurs between cationic and neutral pathway. Computational studies support this interpretation of the experimental evidence and are used to uncover the origins of selectivity.

摘要

导向基团辅助的区域选择性 C-H 烯烃化反应已经得到了很好的研究。然而,对于非活化烯烃的引入,仍然在很大程度上没有成功。因此,对于涉及非活化烯烃的烯烃化反应,需要有一个适当的机理理解,以便在未来增强它们的应用。在本文中,详细描述了钯催化的未活化脂肪族烯烃的 C-H 烯烃化的实验和计算机理研究。钯(II)中间体的分离被证明对于阐明催化烯烃化反应中的基本步骤是有效的。反应速率和顺序的确定、控制实验、同位素标记研究和哈梅特分析已被用于理解反应机理。这些实验研究的结果表明β-氢化物消除是速率决定步骤,并且在阳离子和中性途径之间发生了机理转换。计算研究支持对实验证据的这种解释,并用于揭示选择性的起源。

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