Li Xue, Xu Jun, Li Shi-Jun, Qu Ling-Bo, Li Zhongjun, Chi Yonggui Robin, Wei Donghui, Lan Yu
College of Chemistry, Institute of Green Catalysis, Zhengzhou University 100 Science Avenue Zhengzhou Henan 450001 China
College of Pharmacy, Guizhou University of Traditional Chinese Medicine Guiyang China.
Chem Sci. 2020 Jun 22;11(27):7214-7225. doi: 10.1039/d0sc01793k.
Generally, N-heterocyclic carbene (NHC) complexed with carbonyl compounds would transform into several important active intermediates, , enolates, Breslow intermediates, or acylazolium intermediates, which act as either a nucleophile (Nu) or an electrophile (E) to react with the other E/Nu partner. Hence, the key to predicting the origin of chemoselectivity is to compute the activity (, electrophilic index for E and nucleophilic index for Nu) and stability of the intermediates and products, which are suggested in a general mechanistic map of these reactions. To support this point, we selected and studied different cases of the NHC-catalyzed reactions of carbonyl compounds in the presence of a base and/or an oxidant, in which multiple possible pathways involving acylazolium, enolate, Breslow, and α,β-unsaturated acylazolium intermediates were proposed and a novel index + of the E and Nu partners was employed to exactly predict the energy barrier of the chemoselective step in theory. This work provides a guide for determining the general principle behind organocatalytic reactions with various chemoselectivities, and suggests a general application of the reaction index in predicting the chemoselectivity of the nucleophilic and electrophilic reactions.
一般来说,与羰基化合物络合的N-杂环卡宾(NHC)会转化为几种重要的活性中间体,即烯醇盐、布雷斯洛中间体或酰基唑鎓中间体,它们作为亲核试剂(Nu)或亲电试剂(E)与另一个E/Nu伙伴发生反应。因此,预测化学选择性起源的关键在于计算中间体和产物的活性(即E的亲电指数和Nu的亲核指数)以及稳定性,这在这些反应的一般机理图中有所体现。为了支持这一点,我们选择并研究了在碱和/或氧化剂存在下羰基化合物的NHC催化反应的不同情况,其中提出了涉及酰基唑鎓、烯醇盐、布雷斯洛和α,β-不饱和酰基唑鎓中间体的多种可能途径,并采用了一种新的E和Nu伙伴的指数 + 来在理论上准确预测化学选择性步骤的能垒。这项工作为确定具有各种化学选择性的有机催化反应背后的一般原理提供了指导,并表明该反应指数在预测亲核和亲电反应的化学选择性方面具有广泛应用。