Peng Gongming, Humblot Anaelle, Wischert Raphael, De Oliveira Vigier Karine, Jiang Fan, Pera-Titus Marc, Jérôme François
Eco-Efficient Products and Process Laboratory, SOLVAY/CNRS 3966 Jin Du Road, Xin Zhuang Industrial Zone, Shanghai 201108, China.
Institut de Chimie des Milieux et Matériaux de Poitiers, University of Poitiers-CNRS 1 rue Marcel Doré, TSA 41105, 86073 Poitiers, France.
J Org Chem. 2021 Dec 17;86(24):17896-17905. doi: 10.1021/acs.joc.1c02197. Epub 2021 Dec 2.
The catalytic hydroarylation of nonactivated alkenes with aniline is a reaction of high interest, aiming at providing C-functionalized aniline derivatives that are important precursors for the fabrication of polyurethanes. However, this reaction remains a longstanding goal of catalysis, as it requires one to simultaneously address two important goals: (1) the very low reactivity of nonactivated alkenes and (2) control of the hydroarylation/hydroamination selectivity. As a result, the hydroarylation of aniline is mostly restricted to activated alkenes (i.e., featuring ring strain, conjugation, or activation with electron-donating or -withdrawing groups). Here we show that the combination of bismuth triflate and hexafluoroisopropanol (HFIP) leads to the formation of highly active catalytic species capable of promoting the hydroarylation of various nonactivated alkenes, such as 1-octene, 1-heptene, and 1-undecene, among others, with aniline with high selectivity (71-92%). Through a combined experimental and computational investigation, we propose a reaction pathway where HFIP stabilizes the rate-determining transition state through a H-bond interaction with the triflate anion, thus assisting the acid catalyst in the hydroarylation of nonactivated alkenes. From a practical point of view, this work opens a catalytic access to C-functionalized aniline derivatives from two cheap and abundant feedstocks in a 100% atom-economical fashion.
未活化烯烃与苯胺的催化氢芳基化反应是一个备受关注的反应,旨在提供C-官能化苯胺衍生物,这些衍生物是制造聚氨酯的重要前体。然而,该反应仍然是催化领域长期追求的目标,因为它要求同时实现两个重要目标:(1)未活化烯烃的极低反应活性;(2)控制氢芳基化/氢胺化选择性。因此,苯胺的氢芳基化反应大多局限于活化烯烃(即具有环张力、共轭结构,或带有供电子或吸电子基团而被活化的烯烃)。在此,我们表明三氟甲磺酸铋与六氟异丙醇(HFIP)的组合可形成高活性催化物种,能够促进各种未活化烯烃(如1-辛烯、1-庚烯和1-十一碳烯等)与苯胺的氢芳基化反应,且选择性较高(71 - 92%)。通过实验与计算相结合的研究,我们提出了一种反应途径,即HFIP通过与三氟甲磺酸根阴离子形成氢键相互作用来稳定速率决定过渡态,从而协助酸催化剂实现未活化烯烃的氢芳基化反应。从实际应用角度来看,这项工作以100%原子经济的方式为从两种廉价且丰富的原料制备C-官能化苯胺衍生物开辟了一条催化途径。