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铜催化芳烃与仲胺的电化学C-H胺化反应

Copper-Catalyzed Electrochemical C-H Amination of Arenes with Secondary Amines.

作者信息

Yang Qi-Liang, Wang Xiang-Yang, Lu Jia-Yan, Zhang Li-Pu, Fang Ping, Mei Tian-Sheng

机构信息

State Key Laboratory of Organometallic Chemistry, Center for Excellence in Molecular Synthesis , Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences , 345 Lingling Lu , Shanghai 200032 , China.

Key Laboratory for Advanced Materials and Institute of Fine Chemicals, School of Chemistry & Molecular Engineering , East China University of Science and Technology , 130 Meilong Road , Shanghai 200237 , China.

出版信息

J Am Chem Soc. 2018 Sep 12;140(36):11487-11494. doi: 10.1021/jacs.8b07380. Epub 2018 Aug 30.

Abstract

Electrochemical oxidation represents an environmentally friendly solution to conventional methods that require caustic stoichiometric chemical oxidants. However, C-H functionalizations merging transition-metal catalysis and electrochemical techniques are, to date, largely confined to the use of precious metals and divided cells. Herein, we report the first examples of copper-catalyzed electrochemical C-H aminations of arenes at room temperature using undivided electrochemical cells, thereby providing a practical solution for the construction of arylamines. The use of n-BuNI as a redox mediator is crucial for this transformation. On the basis of mechanistic studies including kinetic profiles, isotope effects, cyclic voltammetric analyses, and radical inhibition experiments, the reaction appears to proceed via a single-electron-transfer (SET) process, and a high valent Cu(III) species is likely involved. These findings provide a new avenue for transition-metal-catalyzed electrochemical C-H functionalization reactions using redox mediators.

摘要

电化学氧化是传统方法的一种环保替代方案,传统方法需要使用腐蚀性的化学计量氧化剂。然而,迄今为止,将过渡金属催化与电化学技术相结合的C-H官能团化反应在很大程度上局限于使用贵金属和分隔式电池。在此,我们报道了首例在室温下使用非分隔式电化学电池实现铜催化芳烃的电化学C-H胺化反应,从而为芳胺的构建提供了一种实用的方法。使用正丁基碘化铵作为氧化还原介质对该转化过程至关重要。基于包括动力学曲线、同位素效应、循环伏安分析和自由基抑制实验在内的机理研究,该反应似乎通过单电子转移(SET)过程进行,并且可能涉及高价铜(III)物种。这些发现为使用氧化还原介质的过渡金属催化电化学C-H官能团化反应开辟了一条新途径。

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