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钌卟啉介导的苄位 C-H 羟化反应的机理和立体选择性:计算研究。

Mechanism and stereoselectivity of benzylic C-H hydroxylation by Ru-porphyrin: a computational study.

机构信息

College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, Zhejiang 310014, China.

出版信息

Org Biomol Chem. 2020 Jan 2;18(2):346-352. doi: 10.1039/c9ob02415h.

Abstract

The mechanism and origin of the stereoselectivity of asymmetric benzylic C-H hydroxylation by Ru-porphyrin were elucidated with density functional theory calculations. The reaction proceeds via a hydrogen-atom abstraction/oxygen-rebound pathway, wherein a high-valent ruthenium-oxo species abstracts a hydrogen atom from ethylbenzene to generate a radical pair intermediate, followed by the oxygen-rebound process to form 1-phenylethanol. The hydrogen-atom abstraction step is the rate- and stereoselectivity-determining step. Based on the mechanistic model, the computed stereoselectivity is in agreement with the experimental observations. Analysis of the distortion/interaction model suggests that stereoselectivity is determined by both the distortion energy of the ethylbenzene and the interaction energy between the ethylbenzene and the chiral Ru-porphyrin. The steric repulsion between the phenyl group of ethylbenzene and the bulky substituent of Ru-porphyrin is the leading cause of chiral induction.

摘要

运用密度泛函理论计算阐明了钌卟啉促进的不对称苄位 C-H 羟化反应的立体选择性的机制和起源。该反应通过氢原子提取/氧回跳途径进行,其中高价钌氧物种从乙苯中提取氢原子生成自由基对中间体,然后进行氧回跳过程形成 1-苯乙醇。氢原子提取步骤是速率和立体选择性决定步骤。基于该反应机理模型,计算得到的立体选择性与实验观察结果一致。扭曲/相互作用模型的分析表明,立体选择性取决于乙苯的扭曲能以及乙苯与手性钌卟啉之间的相互作用能。乙苯的苯基与钌卟啉的庞大取代基之间的空间排斥是手性诱导的主要原因。

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