化学
异构化
烯丙基重排
催化作用
双金属片
环氧化物
环丙烷
质子化
反应性(心理学)
氢原子萃取
光化学
双功能
烯烃
药物化学
氢原子
有机化学
烷基
氢
戒指(化学)
医学
替代医学
病理
离子
作者
Fangfang Li,Jialing Lan,Xin Li,Lung Wa Chung
出处
期刊:Inorganic Chemistry
[American Chemical Society]
日期:2024-03-22
卷期号:63 (14): 6285-6295
被引量:2
标识
DOI:10.1021/acs.inorgchem.4c00011
摘要
Isomerization of epoxides into versatile allylic alcohols is an atom-economical synthetic method to afford vicinal bifunctional groups. Comprehensive density functional theory (DFT) calculations were carried out to elucidate the complex mechanism of a bimetallic Ti/Co-catalyzed selective isomerization of epoxides to allyl alcohols by examining several possible pathways. Our results suggest a possible mechanism involving (1) radical-type epoxide ring opening catalyzed by Cp2Ti(III)Cl leading to a Ti(IV)-bound β-alkyl radical, (2) hydrogen-atom transfer (HAT) catalyzed by the Co(II) catalyst to form the Ti(IV)-enolate and Co(III)–H intermediate, (3) protonation to give the alcohols, and (4) proton abstraction to form the Co(I) species followed by electron transfer to regenerate the active Co(II) and Ti(III) species. Moreover, bimetallic catalysis and two-state reactivity enable the key rate-determining HAT step. Furthermore, a subtle balance between dispersion-driven bimetallic processes and entropy-driven monometallic processes determines the most favorable pathway, among which the monometallic process is energetically more favorable in all steps except the vital hydrogen-atom transfer step. Our study should provide an in-depth mechanistic understanding of bimetallic catalysis.
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