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首页> 外文期刊>The Journal of Organic Chemistry >Insights into the Unexpected Chemoselectivity for the N-Heterocyclic Carbene-Catalyzed Annulation Reaction of Allenals with Chalcones
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Insights into the Unexpected Chemoselectivity for the N-Heterocyclic Carbene-Catalyzed Annulation Reaction of Allenals with Chalcones

机译:对N-杂环碳烯催化的烯丙基苯与丙烯醛的环化反应的意外化学选择性的见解

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Lewis base N-heterocyclic carbene (NHC)-catalyzed annulation is the subject of extensive interest in synthetic chemistry, but the reaction mechanisms, especially the unexpected chemoselectivity of some of these reactions, are poorly understood. In this work, a systematic theoretical calculation has been performed on NHC-catalyzed annulation between allenals and chalcone. Multiple possible reaction pathways (A-E) leading to three different products have been characterized. The calculated results reveal that NHC is more likely to initiate the reaction by nucleophilic attack on the center carbon atom of the allene group but not the carbonyl carbon atom in allenals leading to the Breslow intermediate, which is remarkably different from the other NHC-catalyzed annulations of unsaturated aldehydes with chalcones. The computed energy profiles demonstrate that the most energetically favorable pathway (A) results in polysubstituted pyranyl aldehydes, which reasonably explains the observed chemoselectivity in the experiment. The observed chemoselectivity is demonstrated to be thermodynamically but not kinetically controlled, and the stability of the Breslow intermediate is the key for the possibility of homoenolate pathway D and enolate pathway E. This work can improve our understanding of the multiple competing pathways for NHC-catalyzed annulation reactions of unsaturated aldehydes with chalcones and provide valuable insights for predicting the chemoselectivity for this kind of reaction.
机译:刘易斯碱N-杂环卡宾(NHC)催化的环化反应是合成化学中广泛关注的主题,但对反应机理,尤其是其中某些反应的意外化学选择性知之甚少。在这项工作中,已对NHC催化的艾伦烯和查耳酮之间的环化进行了系统的理论计​​算。已经表征了导致三种不同产物的多种可能的反应途径(A-E)。计算结果表明,NHC更有可能通过亲核攻击丙二烯基团的中心碳原子引发反应,但不会产生导致Breslow中间体的烯丙基中的羰基碳原子,这与其他NHC催化的环显着不同查耳酮制备不饱和醛。计算出的能量分布图表明,在能量上最有利的途径(A)导致多取代的吡喃基醛,这合理地解释了实验中观察到的化学选择性。已证明观察到的化学选择性是热力学的,而不是动力学控制的,Breslow中间体的稳定性是均烯酸途径D和烯醇途径E可能性的关键。这项工作可以增进我们对NHC催化的多种竞争途径的了解。不饱和醛与查耳酮的环化反应,为预测此类反应的化学选择性提供了有价值的见解。

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