Department of Chemistry, Korea Advanced Institute of Science & Technology (KAIST), Daejeon 34141, Republic of Korea.
Center for Catalytic Hydrocarbon Functionalizations, Institute for Basic Science (IBS), Daejeon 34141, Republic of Korea.
J Am Chem Soc. 2020 Apr 22;142(16):7487-7496. doi: 10.1021/jacs.0c00169. Epub 2020 Apr 13.
Construction of carbon-carbon bonds is one of the most important tools in chemical synthesis. In the previously established cross-coupling reactions, prefunctionalized starting materials were usually employed in the form of aryl or alkyl (pseudo)halides or their metalated derivatives. However, the direct use of arenes and alkanes via a 2-fold oxidative C-H bond activation strategy to access chemoselective C(sp)-C(sp) cross-couplings is highly challenging due to the low reactivity of carbon-hydrogen (C-H) bonds and the difficulty in suppressing side reactions such as homocouplings. Herein, we present the new development of a copper-catalyzed cross-dehydrogenative coupling of polyfluoroarenes with alkanes under mild conditions. Relatively weak sp C-H bonds at the benzylic or allylic positions, and nonactivated hydrocarbons could be alkylated by the newly developed catalyst system. A moderate-to-high site selectivity was observed among various C-H bonds present in hydrocarbon reactants, including gaseous feedstocks and complex molecules. Mechanistic information was obtained by performing combined experimental and computational studies to reveal that the copper catalyst plays a dual role in activating both alkane sp C-H bonds and sp polyfluoroarene C-H bonds. It was also suggested that the noncovalent π-π interaction and weak hydrogen bonds formed in situ between the optimal ligand and arene substrates are key to facilitating the current coupling reactions.
碳-碳键的构建是化学合成中最重要的工具之一。在以前建立的交叉偶联反应中,通常以芳基或烷基(假)卤化物或其金属化衍生物的形式使用预官能化的起始原料。然而,由于碳-氢键(C-H)的低反应性以及难以抑制诸如偶联等副反应,通过双氧化 C-H 键活化策略直接使用芳烃和烷烃来获得化学选择性 C(sp)-C(sp)交叉偶联是极具挑战性的。在此,我们提出了在温和条件下铜催化多氟芳烃与烷烃的交叉脱氢偶联的新发展。相对较弱的苄位或烯丙位 sp C-H 键,以及非活化的烃类可以被新开发的催化剂体系烷基化。在烃类反应物中存在的各种 C-H 键之间观察到中等至高的位选择性,包括气态原料和复杂分子。通过进行组合的实验和计算研究获得了机理信息,揭示了铜催化剂在同时活化烷烃 sp C-H 键和 sp 多氟芳烃 C-H 键方面发挥双重作用。还表明,优化配体与芳烃底物之间形成的非共价 π-π 相互作用和弱氢键是促进当前偶联反应的关键。