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A computational study on the N-heterocyclic carbene-catalyzed C-sp2-C-sp3 bond activation/[4+2] cycloaddition cascade reaction of cyclobutenones with imines: a new application of the conservation principle of molecular orbital symmetry

机译:N-杂环卡宾催化的环丁烯酮与亚胺的C-sp2-C-sp3键活化/ [4 + 2]环加成级联反应的计算研究:分子轨道对称性守恒原理的新应用

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A comprehensive density functional theory (DFT) investigation has been performed to interrogate the mechanisms and stereoselectivities of the C-sp2-C-sp3 single bond activation of cyclobutenones and their [4+2] cycloaddition reaction with imines via N-heterocyclic carbene (NHC) organocatalysis. According to our calculated results, the fundamental reaction pathway contains four steps: nucleophilic addition of NHC to cyclobutenone, C-C bond cleavage for the formation of an enolate intermediate, [4+2] cycloaddition of the enolate intermediate with isatin imine, and the elimination of the NHC catalyst. In addition, the calculated results also reveal that the second reaction step is the rate-determining step, whereas the third step is the regio- and stereo-selectivity determining step. For the regio- and stereo-selectivity determining step, all four possible attack modes were considered. The addition of the C=N bond in isatin imine to the dienolate intermediate is more energy favorable than the addition of the C=O bond to a dienolate intermediate. Moreover, the Re face addition of the C=N bond in isatin imine to the Re face of the dienolate intermediate leading to the SS configuration N-containing product was demonstrated to be most energy favorable, which is mainly due to the stronger second-order perturbation energy value in the corresponding transition state. Furthermore, by tracking the frontier molecular orbital (FMO) changes in the rate-determining C-C bond cleavage step, we found that the reaction obeys the conservation principle of molecular orbital symmetry. We believe that the present work would provide valuable insights into this kind of reaction.
机译:进行了全面的密度泛函理论(DFT)研究,以探讨环丁烯酮的C-sp2-C-sp3单键活化及其通过亚杂环卡宾(NHC)与亚胺[4 + 2]环加成反应的机理和立体选择性)有机催化。根据我们的计算结果,基本反应途径包括四个步骤:NHC亲核加成到环丁烯酮,CC键裂解形成烯醇中间体,[4 + 2]烯醇中间体与Isatin亚胺环加成,以及消除NHC催化剂。另外,计算结果还表明,第二反应步骤是速率确定步骤,而第三步骤是区域和立体选择性确定步骤。对于区域选择性和立体选择性确定步骤,考虑了所有四种可能的攻击模式。与将C = O键添加至二烯酸酯中间体相比,将靛亚胺中的C = N键添加至二烯酸酯中间体更有利于能量。此外,事实证明,在靛红亚胺中的C = N键的Re面向二烯酸酯中间体的Re面添加导致SS构型的含N产物最有利于能量,这主要是由于较强的二阶在相应的过渡状态下的摄动能量值。此外,通过在决定速率的C-C键裂解步骤中跟踪前沿分子轨道(FMO)的变化,我们发现该反应符合分子轨道对称性的守恒原理。我们认为,目前的工作将为这种反应提供宝贵的见解。

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