Kim Jungwon, Kim Siin, Choi Geunho, Lee Geun Seok, Kim Donghyeok, Choi Jungkweon, Ihee Hyotcherl, Hong Soon Hyeok
Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea
KI for the BioCentury, Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea.
Chem Sci. 2020 Dec 8;12(5):1915-1923. doi: 10.1039/d0sc04890a.
Catalytic dehydrogenation (CD) visible-light photoredox catalysis provides an efficient route for the synthesis of aromatic compounds. However, access to -aryl amines, which are widely utilized synthetic moieties, visible-light-induced CD remains a significant challenge, because of the difficulty in controlling the reactivity of amines under photocatalytic conditions. Here, the visible-light-induced photocatalytic synthesis of -aryl amines was achieved by the CD of allylic amines. The unusual strategy using CFI as an hydrogen-atom acceptor enables the mild and controlled CD of amines bearing various functional groups and activated C-H bonds, suppressing side-reaction of the reactive -aryl amine products. Thorough mechanistic studies suggest the involvement of single-electron and hydrogen-atom transfers in a well-defined order to provide a synergistic effect in the control of the reactivity. Notably, the back-electron transfer process prevents the desired product from further reacting under oxidative conditions.
催化脱氢(CD)可见光光氧化还原催化为芳香族化合物的合成提供了一条有效途径。然而,对于广泛用作合成基团的芳基胺而言,可见光诱导的CD仍然是一项重大挑战,因为在光催化条件下难以控制胺的反应活性。在此,通过烯丙基胺的CD实现了可见光诱导的芳基胺的光催化合成。使用CFI作为氢原子受体的独特策略能够实现带有各种官能团和活化C-H键的胺的温和且可控的CD,抑制了活性芳基胺产物的副反应。深入的机理研究表明,单电子转移和氢原子转移按明确的顺序参与其中,从而在控制反应活性方面产生协同效应。值得注意的是,反向电子转移过程可防止所需产物在氧化条件下进一步反应。