取代基
催化作用
化学
表面改性
反应性(心理学)
选择性
光化学
光催化
脱质子化
组合化学
离解(化学)
氢键
氢原子
基质(水族馆)
背景(考古学)
纳米技术
密度泛函理论
电子效应
功能群
光催化
均相催化
反应机理
作者
Gaétan Archer,Maurice Médebielle,Jérémy Merad
摘要
Photo-induced hydrogen atom transfer (HAT) catalysis has become a powerful platform for the direct and selective functionalization of ubiquitous C─H bonds. Traditionally, the outcome of these transformations is dictated by the interplay between C─H bond dissociation energies and polar effects, enabling predictable yet inherently substrate-controlled selectivity. Recently, a fundamentally new strategy has emerged that relies on the catalytic and reversible modulation of substrate electronics to transiently enhance the reactivity of targeted C─H bonds. Notably, catalytic full or partial deprotonation of oxygen- and nitrogen-containing functional groups has proven remarkably effective in selectively activating adjacent C─H bonds toward HAT, a phenomenon known as the anionic substituent effect. Rather than relying solely on the intrinsic properties of a substrate, this concept allows chemists to reprogram C─H bond reactivity in situ, unlocking previously inaccessible levels of selectivity in the direct functionalization of abundant functional groups under mild photocatalytic conditions. In this minireview, we discuss the mechanistic principles underpinning catalytic anionic substituent effects (CASE), the diverse strategies developed to generate them, and their impact on photocatalytic HAT-mediated C-H functionalization. By highlighting recent advances and emerging opportunities, we illustrate how transient electronic activation is reshaping the design of selective C-H functionalization reactions.
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