激进的
化学
乙烯基
光催化
表面改性
催化作用
组合化学
反应性(心理学)
基质(水族馆)
功能群
光化学
有机化学
化学计量学
反应条件
双键
转鼓
有机合成
分子内力
发散合成
反应机理
自由基反应
偶联反应
作者
Tingting Miao,Rong‐Bin Liang,Yao-Jun Wang,Xiang-Rui Li,Yonghong Xiao,Qing‐Xiao Tong,Jian‐Ji Zhong
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-12-19
卷期号:16 (1): 576-586
被引量:8
标识
DOI:10.1021/acscatal.5c06961
摘要
The activation of aliphatic carbonyls to form ketyl radicals for C–C bond construction remains a formidable challenge, primarily due to their highly negative reduction potentials. Conventional strategies typically rely on stoichiometric metal reductants or strongly reducing conditions. Herein, we disclose a general photoredox platform that leverages ligated boryl radicals to efficiently activate aliphatic carbonyls, thus enabling divergent hydroxyalkylation of alkenes under metal-free and mild conditions. Notably, this strategy accommodates a wide range of alkenes, including α-trifluoromethyl olefins, aliphatic olefins, heteroatom-substituted alkenes, styrenes, and electron-deficient alkenes. Furthermore, by fine-tuning the catalytic system, the coupling of α-CF3 alkenes with aliphatic carbonyls can be selectively directed toward either defluoroalkylation or hydroalkylation products with high chemoselectivity, highlighting the versatility and tunability of this approach. Mechanistic studies confirm the critical involvement of ligated boryl radicals in the carbonyl activation. The synthetic utility of this protocol is further demonstrated through late-stage functionalization of pharmaceutically relevant molecules. With its broad substrate scope, good functional group compatibility, and programmable selectivity, this method provides a general and practical strategy for functionalization of aliphatic carbonyls.
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