Institute of Organic Chemistry , RWTH Aachen University , Landoltweg 1 , 52074 Aachen , Germany.
KAUST Catalysis Center (KCC) , King Abdullah University of Science and Technology (KAUST) , Thuwal 23955-6900 , Saudi Arabia.
J Am Chem Soc. 2020 Feb 19;142(7):3532-3539. doi: 10.1021/jacs.9b12490. Epub 2020 Feb 4.
Cross-coupling reactions for carbon-carbon and carbon-heteroatom bond formation are of great importance in modern chemical synthesis. In addition to classical cross-couplings involving preformed or preactivated coupling partners, more recently breakthroughs have been made in the selective, direct coupling of abundant aliphatic carbon-hydrogen bonds using hydrogen atom transfer reactions in which the bond-dissociation energy is the thermodynamic driving force. The more challenging carbon-carbon bond activation is still rather underdeveloped due to the bond inertness. Herein, we report a mild and general strategy for the activation of a diverse set of readily available cyclic alcohols for the remote and site-specific arylation of ketones via the combination of photoredox-mediated multisite concerted proton-electron transfer (MS-PCET) and nickel catalysis. The current cross-coupling proceeds with the generation of an alkoxy radical utilizing bond-dissociation free energy (BDFE) as the thermodynamic driving force. Subsequently, the resulting remote carbon-centered radicals formed by C-C cleavage merge with the nickel catalytic cycle to create the challenging C(sp)-C(sp) bonds.
碳-碳和碳-杂原子键的交叉偶联反应在现代化学合成中具有重要意义。除了涉及预先形成或预先活化的偶联伙伴的经典交叉偶联反应外,最近在使用氢原子转移反应选择性地直接偶联丰富的脂肪族碳-氢键方面取得了突破,其中键离解能是热力学驱动力。由于键的惰性,更具挑战性的碳-碳键活化仍然相当不发达。在此,我们报告了一种温和且通用的策略,用于通过光氧化还原介导的多部位协同质子-电子转移 (MS-PCET) 和镍催化的组合,激活多种易得的环状醇,从而对酮进行远程和位点特异性芳基化。当前的交叉偶联反应通过利用键离解自由能 (BDFE) 作为热力学驱动力来生成烷氧基自由基。随后,通过 C-C 断裂形成的远程碳中心自由基与镍催化循环结合,形成具有挑战性的 C(sp)-C(sp) 键。