化学
催化作用
卡宾
苯酚
苯
镍
光化学
催化循环
双金属片
烷基化
组合化学
介子
营业额
氧化还原
异丙苯
本体电解
电泳剂
有机化学
均相催化
产量(工程)
萘
纳米材料基催化剂
催化氧化
反应机理
试剂
基质(水族馆)
作者
Giacomo Rigoni,Simone Bertini,Fabienne Bühler,Martin Albrecht
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2026-03-03
卷期号:16 (6): 6077-6087
标识
DOI:10.1021/acscatal.6c00999
摘要
Phenol is industrially synthesized on an annual multimillion-ton scale through the cumene process, which involves three synthetic steps consisting of Friedel–Crafts alkylation of benzene, oxidation, and acidolysis. Transition-metal-catalyzed direct oxidation of benzene offers a single-step access to phenol, though overoxidation and low turnover numbers have limited the catalytic efficiency. Based on the proposed relevance of dimetallic oxo-bridged species, we investigated a series of nickel complexes with a Ni2(OH)2 core as catalyst precursors for the direct oxidation of benzene to phenol. Here, we show that complexes supported by N-heterocyclic carbene (NHC) ligands of the type [(NHC)2Ni(μ–OH)2Ni(NHC)2]2+ afford highly efficient catalysts for the direct oxidation of benzene to produce phenol with exquisite (>98%) selectivity. Mesoionic triazole-based carbenes impart higher activity than imidazole-derived NHCs and reach up to 36% phenol yield with thousands of turnover numbers, a considerable improvement to the hundreds for the current state-of-the-art nickel systems. The catalytic efficiency is limited by product inhibition, which is mitigated, to some extent, by using trifluoroethanol as a solvent. Detailed mechanistic investigation suggests that the reaction proceeds via an electrophilic oxidation pathway involving a [NiIII(μ-O)2NiIII]2+ active species, which was generated in situ both through chemical and electrochemical oxidation of the hydroxy-bridged NiII–NiII precursor and spectroscopically identified at low temperatures. Kinetic and mechanistic data as well as control experiments strongly suggest the integrity of the bimetallic nickel core as a quintessential motive for catalytic activity in benzene oxidation.
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