Liu Chengwei, Ji Chong-Lei, Qin Zhi-Xin, Hong Xin, Szostak Michal
Department of Chemistry, Rutgers University, 73 Warren Street, Newark, NJ 07102, USA.
Department of Chemistry, Zhejiang University, Hangzhou 310027, China.
iScience. 2019 Sep 27;19:749-759. doi: 10.1016/j.isci.2019.08.021. Epub 2019 Aug 17.
The biaryl motif is a building block in many drugs, agrochemicals, and materials, and as such it is highly desirable as a synthesis target. The state-of-the-art process for biaryl synthesis from ubiquitous carboxylic acids is decarboxylative cross-coupling involving loss of carbon dioxide (CO). However, the scope of these methods is severely limited, mainly due to specific substitution required to promote decarboxylation. The present report implements a decarbonylative version with loss of carbon monoxide (CO) that enables to directly engage carboxylic acids in a Suzuki-Miyaura cross-coupling to produce biaryls as a general method with high cross-coupling selectivity using a well-defined Pd(0)/(II) catalytic cycle. This protocol shows a remarkably broad scope (>80 examples) and is performed in the absence of exogenous inorganic bases. In a broader context, the approach shows promise for routine applications in the synthesis of biaryls by carefully controlled decarbonylation of prevalent carboxylic acids.
联芳基结构单元是许多药物、农用化学品和材料中的一个构建模块,因此作为合成目标非常理想。从普遍存在的羧酸合成联芳基的最新方法是脱羧交叉偶联,涉及二氧化碳(CO₂)的损失。然而,这些方法的范围受到严重限制,主要是由于促进脱羧所需的特定取代基。本报告实施了一种损失一氧化碳(CO)的脱羰版本,该版本能够使羧酸直接参与铃木-宫浦交叉偶联反应,以使用明确的Pd(0)/(II)催化循环,作为一种具有高交叉偶联选择性的通用方法来生产联芳基。该方案显示出非常广泛的适用范围(>80个实例),并且在没有外源无机碱的情况下进行。在更广泛的背景下,该方法通过对普遍存在的羧酸进行仔细控制的脱羰反应,在联芳基合成的常规应用中显示出前景。