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镍催化芳基卤化物的电化学均偶联反应的机理研究

Mechanistic studies of Ni-catalyzed electrochemical homo-coupling reactions of aryl halides.

作者信息

Luo Jian, Davenport Michael T, Carter Arianna, Ess Daniel H, Liu T Leo

机构信息

Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322, USA.

Department of Chemistry and Biochemistry, Brigham Young University, Provo, Utah 84604, USA.

出版信息

Faraday Discuss. 2023 Oct 31;247(0):136-146. doi: 10.1039/d3fd00069a.

Abstract

Ni-catalyzed electrochemical arylation is an attractive, emerging approach for molecular construction as it uses air-stable Ni catalysts and efficiently proceeds at room temperature. However, the homo-coupling of aryl halide substrates is one of the major side reactions. Herein, extensive experimental and computational studies were conducted to examine the mechanism of Ni-catalyzed electrochemical homo-coupling of aryl halides. The results indicate that an unstable Ni(Ar)Br intermediate formed through oxidative addition of the cathodically generated Ni species with aryl bromide and a consecutive chemical reduction step. For electron-rich aryl halides, homo-coupling reaction efficiency is limited by the oxidative addition step, which can be improved by negatively shifting the redox potential of the Ni-catalyst. DFT computational studies suggest a Ni(Ar)Br/Ni(Ar)Br ligand exchange pathway for the formation of a high-valent Ni(Ar)Br intermediate for reductive elimination and production of the biaryl product. This work reveals the reaction mechanism of Ni-catalyzed electrochemical homo-coupling of aryl halides, which may provide valuable information for developing cross-coupling reactions with high selectivity.

摘要

镍催化的电化学芳基化反应是一种引人注目的新兴分子构建方法,因为它使用空气稳定的镍催化剂,并且在室温下能高效进行。然而,芳基卤化物底物的均偶联反应是主要的副反应之一。在此,我们进行了广泛的实验和计算研究,以探究镍催化的芳基卤化物电化学均偶联反应的机理。结果表明,通过阴极生成的镍物种与芳基溴的氧化加成以及连续的化学还原步骤形成了不稳定的Ni(Ar)Br中间体。对于富电子芳基卤化物,均偶联反应效率受氧化加成步骤的限制,可通过负向移动镍催化剂的氧化还原电位来提高。密度泛函理论(DFT)计算研究表明,形成高价Ni(Ar)Br中间体以进行还原消除并生成联芳基产物的过程存在一条Ni(Ar)Br/Ni(Ar)Br配体交换途径。这项工作揭示了镍催化的芳基卤化物电化学均偶联反应的机理,这可能为开发具有高选择性的交叉偶联反应提供有价值的信息。

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