化学
光化学
质子化
加合物
互变异构体
铜
催化作用
密度泛函理论
催化循环
单重态
苯胺
过氧化氢
价(化学)
醛
药物化学
计算化学
有机化学
激发态
离子
物理
核物理学
作者
Guanqi Wang,Olivier Jarjayes,Yohann Moreau,Fabrice Thomas
标识
DOI:10.1002/ejic.202400091
摘要
Abstract Density functional theory (DFT) calculations were carried out to elucidate the mechanism of alcohol oxidation by a Cu(III) anilidosalen complex. The study considered singlet, broken‐symmetry singlet, and triplet states. During the first step the alcoholate binds to the copper, inducing valence tautomerism, transforming the Cu(III) complex into a Cu(II)‐alkoxyradical adduct. Subsequently, an “aniline” ring abstracts a hydrogen from the substrate with a low barrier, yielding a Cu(I) aniline complex and the aldehyde, akin to galactose oxidase. Catalyst re‐oxidation is coupled to dioxygen reduction. Initially, dioxygen is reduced by Cu(I) into superoxide, which binds to the metal. Protonation then yields either a Cu(II)‐hydrosuperoxo or a Cu(III)‐hydroperoxo adduct. Further protonation closes the catalytic cycle by releasing hydrogen peroxide.
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