State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, People's Republic of China.
Chirality. 2013 Sep;25(9):521-8. doi: 10.1002/chir.22157. Epub 2013 Jun 25.
Growing attention in developing new N-heterocyclic carbene (NHC)-mediated reactions involving homoenolate intermediates has prompted our interest in exploring the mechanistic details of the related reactions. In this work, we carried out a detailed theoretical study for the NHC-catalyzed annulation reaction of cinnamaldehyde (A) and benzodi(enone) (B) in the presence of 1,8-diazabicyclo[5.4.0]undec-7-ene (DBU). By performing density functional theory calculations, we show clearly the detailed reaction mechanism and rationalize the experimental observation. The reaction of A and B falls into two stages: the formation of homoenolate intermediate and the annulation of homoenolate with B. In the homoenolate formation stage, three possible paths are characterized. The pathway involving the DBU-assisted 1,2-proton transfer with a stepwise mechanism is kinetically more favorable, and the DBU-assisted C1 proton departure is the rate-determining step of the total reaction. The annulation of homoenolate with B involves four elementary steps. The conformational difference of homoenolate (cis and trans) leads to two slightly different reaction processes. In the total reaction, the process involving cis-conformation of A is kinetically more feasible. This can be clearly understood through the frontier molecular orbital analysis and the electronic inductive effect. The calculated results are expected to offer valuable information for further design and development of NHC-mediated reactions.
发展涉及偕嗯醇中间体的新型 N-杂环卡宾 (NHC) 介导反应引起了人们的关注,这促使我们有兴趣探索相关反应的机理细节。在这项工作中,我们对肉桂醛 (A) 和苯并二烯酮 (B) 在 1,8-二氮杂双环[5.4.0]十一-7-烯 (DBU) 存在下的 NHC 催化环化反应进行了详细的理论研究。通过进行密度泛函理论计算,我们清楚地展示了详细的反应机理,并对实验观察进行了合理化解释。A 和 B 的反应分为两个阶段:偕嗯醇中间体的形成和偕嗯醇与 B 的环化。在偕嗯醇形成阶段,有三种可能的途径。涉及 DBU 辅助的 1,2-质子转移的分步机制的途径在动力学上更有利,并且 DBU 辅助的 C1 质子离去是总反应的速率决定步骤。偕嗯醇与 B 的环化涉及四个基本步骤。偕嗯醇的构象差异(顺式和反式)导致两个略有不同的反应过程。在总反应中,A 的顺式构象的过程在动力学上更可行。这可以通过前线分子轨道分析和电子诱导效应清楚地理解。计算结果有望为进一步设计和开发 NHC 介导的反应提供有价值的信息。