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钯(II)促进的脱羰氟烷基化反应:从基础的有机金属化学研究到催化。

Decarbonylative Fluoroalkylation at Palladium(II): From Fundamental Organometallic Studies to Catalysis.

机构信息

Department of Chemistry, University of Michigan, 930 North University Avenue, Ann Arbor, Michigan 48109, United States.

出版信息

J Am Chem Soc. 2021 Nov 10;143(44):18617-18625. doi: 10.1021/jacs.1c08551. Epub 2021 Oct 28.

Abstract

This Article describes the development of a decarbonylative Pd-catalyzed aryl-fluoroalkyl bond-forming reaction that couples fluoroalkylcarboxylic acid-derived electrophiles [RC(O)X] with aryl organometallics (Ar-M'). This reaction was optimized by interrogating the individual steps of the catalytic cycle (oxidative addition, carbonyl de-insertion, transmetalation, and reductive elimination) to identify a compatible pair of coupling partners and an appropriate Pd catalyst. These stoichiometric organometallic studies revealed several critical elements for reaction design. First, uncatalyzed background reactions between RC(O)X and Ar-M' can be avoided by using M' = boronate ester. Second, carbonyl de-insertion and Ar-R reductive elimination are the two slowest steps of the catalytic cycle when R = CF. Both steps are dramatically accelerated upon changing to R = CHF. Computational studies reveal that a favorable FC-H---X interaction contributes to accelerating carbonyl de-insertion in this system. Finally, transmetalation is slow with X = difluoroacetate but fast with X = F. Ultimately, these studies enabled the development of an (SPhos)Pd-catalyzed decarbonylative difluoromethylation of aryl neopentylglycol boronate esters with difluoroacetyl fluoride.

摘要

本文描述了一种脱羰钯催化的芳基-氟烷基键形成反应的发展,该反应将氟烷基羧酸衍生的亲电试剂[RC(O)X]与芳基有机金属试剂(Ar-M')偶联。通过探究催化循环的各个步骤(氧化加成、羰基脱插、转金属化和还原消除),优化了该反应,以确定合适的配体对和合适的钯催化剂。这些计量有机金属研究揭示了反应设计的几个关键要素。首先,通过使用 M' = 硼酸酯,可以避免 RC(O)X 和 Ar-M' 之间无催化的背景反应。其次,当 R = CF 时,羰基脱插和 Ar-R 还原消除是催化循环中最慢的两个步骤。当 R = CHF 时,这两个步骤都显著加速。计算研究表明,在该体系中,有利的 FC-H---X 相互作用有助于加速羰基脱插。最后,当 X = 二氟乙酸盐时,转金属化较慢,而当 X = F 时,转金属化较快。最终,这些研究使得(SPhos)Pd 催化的芳基新戊二醇硼酸酯与二氟乙酰氟的脱羰二氟甲基化反应得以发展。

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