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磷(III)兼容的不对称铃木-宫浦交叉偶联(P-ASMC)反应

Phosphorus(III)-Compatible Asymmetric Suzuki-Miyaura Cross-Coupling (P-ASMC) Reaction.

作者信息

Wu Lei, Ge Chengzhi, Wang Minyan, Shi Zhuangzhi

机构信息

State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC), School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210093, China.

School of Chemistry and Materials Science, Nanjing Normal University, 210023 Nanjing, China.

出版信息

J Am Chem Soc. 2025 Jun 18;147(24):20657-20666. doi: 10.1021/jacs.5c03816. Epub 2025 Jun 7.

Abstract

The Suzuki-Miyaura cross-coupling (SMC) is a cornerstone method in the synthesis of biaryls. The enantioselective variant of this reaction typically involves an exogenous chiral ligand to induce enantioselectivity. Nonetheless, the application of coupling partners adorned with phosphorus(III) functionalities has been hindered by their strong coordination with transition metals and the challenges in identifying compatible chiral ligands. Here, we report the development of a P(III)-compatible asymmetric Suzuki-Miyaura cross-coupling (P-ASMC) reaction that enables the one-step assembly of axially chiral biaryl monophosphines. Employing a palladium catalyst, an achiral phosphine, and a chiral phosphine ligand, -bromo-substituted arylphosphines undergo coupling with aryl boronate esters, demonstrating high reactivity and enantioselectivity. The resultant atropisomers exhibit exceptional efficacy as ligands in enantioselective palladium, rhodium, and gold catalysis, highlighting the practical promise of the P-ASMC reaction. Comprehensive experimental and computational studies have elucidated the reaction pathway and identified key factors contributing to cluster inhibition and enantioinduction.

摘要

铃木-宫浦交叉偶联反应(SMC)是合成联芳基化合物的一种基础方法。该反应的对映选择性变体通常需要外源性手性配体来诱导对映选择性。尽管如此,带有磷(III)官能团的偶联伙伴的应用受到它们与过渡金属的强配位作用以及识别兼容手性配体方面挑战的阻碍。在此,我们报道了一种与磷(III)兼容的不对称铃木-宫浦交叉偶联反应(P-ASMC)的开发,该反应能够一步组装轴向手性联芳基单膦。使用钯催化剂、非手性膦和手性膦配体,α-溴代芳基膦与芳基硼酸酯发生偶联反应,展现出高反应活性和对映选择性。所得的阻转异构体作为对映选择性钯、铑和金催化反应中的配体表现出卓越的效能,突出了P-ASMC反应的实际应用前景。全面的实验和计算研究阐明了反应途径,并确定了导致簇抑制和对映体诱导的关键因素。

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