Centre for Molecular Informatics, Department of Chemistry, University of Cambridge , Lensfield Road, Cambridge CB2 1EW, United Kingdom.
J Org Chem. 2017 Apr 21;82(8):4396-4401. doi: 10.1021/acs.joc.7b00521. Epub 2017 Mar 31.
We report density functional theory calculations that examine the mechanism and origins of stereoselectivity of Soós' landmark discovery from 2005 that cinchona thioureas catalyze the asymmetric Michael addition of nitroalkanes to enones. We show that the electrophile is activated by the catalyst's protonated amine and that the nucleophile binds to the thiourea moiety by hydrogen bonding. These results lead to the correction of published mechanistic work which did not consider this activation mode. We have also investigated the corresponding cinchona squaramide-catalyzed reaction and found that it proceeds by the same mechanism despite the differences in the geometry of the two catalysts' hydrogen-bond-donating groups, which demonstrates the generality of this mechanistic model.
我们报告了密度泛函理论计算,研究了 Soós 2005 年标志性发现的立体选择性机制和起源,即奎宁硫脲催化硝基烷与烯酮的不对称迈克尔加成。我们表明,亲电试剂被催化剂的质子化胺激活,亲核试剂通过氢键结合到硫脲部分。这些结果导致对发表的机械工作的修正,该工作没有考虑这种激活模式。我们还研究了相应的奎宁螺二酰胺催化反应,发现尽管两种催化剂的氢键供体基团的几何形状不同,但反应机制相同,这证明了这种机械模型的普遍性。