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电化学钯催化的芳基腙和炔烃的氧化 Sonogashira 羰基化反应生成 Ynones。

Electrochemical Palladium-Catalyzed Oxidative Sonogashira Carbonylation of Arylhydrazines and Alkynes to Ynones.

机构信息

The Institute for Advanced Studies (IAS), College of Chemistry and Molecular Sciences Wuhan University, Wuhan 430072, P. R. China.

School of Chemical Engineering and Technology, Xi'an Jiaotong University, Xi'an 710049, P. R. China.

出版信息

J Am Chem Soc. 2021 Aug 18;143(32):12460-12466. doi: 10.1021/jacs.1c06036. Epub 2021 Aug 4.

Abstract

Oxidative carbonylation using carbon monoxide has evolved as an attractive tool to valuable carbonyl-containing compounds, while mixing CO with a stoichiometric amount of a chemical oxidant especially oxygen is hazardous and limits its application in scale-up synthesis. By employing anodic oxidation, we developed an electrochemical palladium-catalyzed oxidative carbonylation of arylhydrazines with alkynes, which is regarded as an alternative supplement of the carbonylative Sonogashira reaction. Combining an undivided cell with constant current mode, oxygen-free conditions avoids the explosion hazard of CO. A diversity of ynones are efficiently obtained using accessible arylhydrazines and alkynes under copper-free conditions. A possible mechanism of the electrochemical Pd(0)/Pd(II) cycle is rationalized based upon cyclic voltammetry, kinetic studies, and intermediates experiments.

摘要

使用一氧化碳的氧化羰基化为含有羰基的有价值化合物提供了一种有吸引力的工具,而将 CO 与化学氧化剂(特别是氧气)的化学计量量混合是危险的,限制了其在大规模合成中的应用。通过阳极氧化,我们开发了一种电化学钯催化的芳基腙与炔烃的氧化羰基化反应,这被认为是羰基化 Sonogashira 反应的替代补充。通过采用无隔板电池和恒流模式,无氧条件避免了 CO 的爆炸危险。在无铜条件下,使用易得的芳基腙和炔烃可以有效地获得多种 ynones。根据循环伏安法、动力学研究和中间体实验,合理推断了电化学 Pd(0)/Pd(II)循环的可能机制。

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