Mao Yu, Zhao Wenxuan, Lu Shuo, Yu Lei, Wang Yi, Liang Yong, Ni Shengyang, Pan Yi
State Key Laboratory of Coordination Chemistry, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering, Nanjing University Nanjing 210023 China
Chem Sci. 2020 Apr 29;11(19):4939-4947. doi: 10.1039/d0sc02213f.
Redox-active esters (RAEs) as alkyl radical precursors have demonstrated great advantages for C-C bond formation. A decarboxylative cross-coupling method is described to afford substituted alkynes from various carboxylic acids using copper catalysts CuCl and Cu(acac). The photoexcitation of copper acetylides with electron-rich NEt as a ligand provides a general strategy to generate a range of alkyl radicals from RAEs of carboxylic acids, which can be readily coupled with a variety of aromatic alkynes. The scope of this cross-coupling reaction can be further expanded to aliphatic alkynes and alkynyl silanes using a catalytic amount of preformed copper-phenylacetylide. In addition, DFT calculations revealed the favorable reaction pathway and that the bidentate acetylacetonate ligand of the copper intermediate plays an important role in inhibiting the homo-coupling of the alkyne.
氧化还原活性酯(RAEs)作为烷基自由基前体,在碳-碳键形成方面已展现出巨大优势。本文描述了一种脱羧交叉偶联方法,该方法使用铜催化剂CuCl和Cu(acac),由各种羧酸制备取代炔烃。以富电子的NEt作为配体对炔铜进行光激发,提供了一种从羧酸的RAEs生成一系列烷基自由基的通用策略,这些烷基自由基可轻松与多种芳基炔烃偶联。使用催化量的预制苯基乙炔铜,该交叉偶联反应的范围可进一步扩展至脂肪族炔烃和炔基硅烷。此外,密度泛函理论(DFT)计算揭示了有利的反应途径,并且铜中间体的双齿乙酰丙酮配体在抑制炔烃的均偶联中起着重要作用。