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Mechanism of Rh(III)-catalyzed cyclopropanation using N-enoxyphthalimides and alkenes: Insights from DFT calculations

机译:N-烯氧基邻苯二甲酰亚胺和烯烃对Rh(III)催化环丙烷化的机理:DFT计算的见解

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The Rh(III)-catalyzed cyclopropanation reaction using N-enoxyphthalimides and alkenes developed by Rovis group [J. Am. Chem. Soc. 2014, 136, 11292-11295] provided an efficient method for the constructions of trans 1,2-disubstituted cyclopropanes in which an elegant control of the diastereoselectivities was achieved. In the current report we aimed at uncovering the mechanism and diastereoselectivity of the reactions using density functional theory (DFT) calculations. By comparing the energies of all possible pathways, we found that a novel mechanism involving a four-membered Rh(V) species is the energetically most favorable one. In this pathway, the four-membered Rh(V) intermediate is formed by sequential C-H activation, alkene insertion and N-O bond cleavage steps, and the final cyclopropane product is formed via an reductive elimination process. The N-O bond cleavage was found to be the diastereoselectivity-determining, which was reproduced well the experimentally observed selectivity. By analyzing using the distortion/interaction model, it was found that the distortion energy plays a main role in determining the diastereoselectivity. (C) 2016 Elsevier Ltd. All rights reserved.
机译:Rovis组开发的使用N-烯氧基邻苯二甲酰亚胺和烯烃的Rh(III)催化的环丙烷化反应[J.上午。化学Soc。 [2014,136,11292-11295]提供了一种高效的反式1,2-二取代环丙烷结构的方法,该方法可很好地控制非对映选择性。在本报告中,我们旨在使用密度泛函理论(DFT)计算来揭示反应的机理和非对映选择性。通过比较所有可能途径的能量,我们发现一种涉及四元Rh(V)物种的新型机制在能量上是最有利的。在此途径中,四元Rh(V)中间体是通过连续的C-H活化,烯烃插入和N-O键裂解步骤形成的,最终的环丙烷产物是通过还原消除过程形成的。发现N-O键的裂解是非对映选择性的决定,其在实验观察到的选择性上得到了很好的再现。通过使用变形/相互作用模型进行分析,发现变形能量在确定非对映选择性中起主要作用。 (C)2016 Elsevier Ltd.保留所有权利。

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