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钯催化的酰基重氮甲烷的 C-H 官能化和串联交叉偶联反应。

Palladium-catalyzed C-H functionalization of acyldiazomethane and tandem cross-coupling reactions.

机构信息

†Beijing National Laboratory of Molecular Sciences, Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education, College of Chemistry, Peking University, Beijing 100871 China.

‡School of Chemistry and Chemical Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

J Am Chem Soc. 2015 Apr 8;137(13):4435-44. doi: 10.1021/ja513275c. Epub 2015 Mar 31.

Abstract

Palladium-catalyzed C-H functionalization of acyldiazomethanes with aryl iodides has been developed. This reaction is featured by the retention of the diazo functionality in the transformation, thus constituting a novel method for the introduction of diazo functionality to organic molecules. Consistent with the experimental results, the density functional theory (DFT) calculation indicates that the formation of Pd-carbene species in the catalytic cycle through dinitrogen extrusion from the palladium ethyl diazoacetate (Pd-EDA) complex is less favorable. The reaction instead proceeds through Ag2CO3 assisted deprotonation and subsequently reductive elimination to afford the products with diazo functionality remained. This C-H functionalization transformation can be further combined with the recently evolved palladium-catalyzed cross-coupling reaction of diazo compounds with aryl iodides to develop a tandem coupling process for the synthesis of α,α-diaryl esters. DFT calculation supports the involvement of Pd-carbene as reactive intermediate in the catalytic cycle, which goes through facile carbene migratory insertion with a low energy barrier (3.8 kcal/mol).

摘要

钯催化酰基重氮甲烷与芳基碘化物的 C-H 功能化反应已经被开发出来。该反应的特点是在转化过程中保留了重氮官能团,因此构成了向有机分子中引入重氮官能团的新方法。与实验结果一致,密度泛函理论(DFT)计算表明,通过钯乙基重氮乙酸酯(Pd-EDA)配合物中从二氮分子中挤出氮气,形成钯卡宾物种的催化循环不太有利。反应是通过 Ag2CO3 辅助的去质子化,然后进行还原消除来进行的,从而得到保留了重氮官能团的产物。这种 C-H 功能化转化可以与最近发展起来的钯催化重氮化合物与芳基碘化物的交叉偶联反应进一步结合,开发出用于合成α,α-二芳基酯的串联偶联过程。DFT 计算支持 Pd-卡宾作为催化循环中反应中间体的参与,它通过低能垒(3.8 kcal/mol)的卡宾迁移插入反应来进行。

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