State Key Laboratory of Physical Chemistry of Solid Surfaces, Key Laboratory of Chemical Biology of Fujian Province, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, P. R. China.
J Am Chem Soc. 2020 Nov 11;142(45):19058-19064. doi: 10.1021/jacs.0c10471. Epub 2020 Oct 30.
A direct enantioselective acylation of α-amino C(sp)-H bonds with carboxylic acids has been achieved via the merger of transition metal and photoredox catalysis. This straightforward protocol enables cross-coupling of a wide range of carboxylic acids, one class of feedstock chemicals, with readily available -alkyl benzamides to produce highly valuable α-amino ketones in high enantioselectivities under mild conditions. The synthetic utility of this method is further demonstrated by gram scale synthesis and application to late-stage functionalization. This method provides an unprecedented solution to address the challenging stereocontrol in metallaphotoredox catalysis and C(sp)-H functionalization. Mechanistic studies suggest the α-C(sp)-H bond of the benzamide coupling partner is cleavage by photocatalytically generated bromine radicals to form α-amino alkyl radicals, which subsequently engages in nickel-catalyzed asymmetric acylation.
通过过渡金属和光氧化还原催化的融合,实现了α-氨基 C(sp)-H 键与羧酸的直接对映选择性酰化。该直接方法可实现广泛的羧酸(一类原料化学品)与易得的 -烷基苯甲酰胺的交叉偶联,在温和条件下以高对映选择性生成高价值的α-氨基酮。该方法的合成实用性进一步通过克级合成和后期官能团化应用得到证明。该方法为解决金属光氧化还原催化和 C(sp)-H 官能化中具有挑战性的立体控制问题提供了前所未有的解决方案。机理研究表明,酰胺偶联伙伴的α-C(sp)-H 键被光催化生成的溴自由基裂解,形成α-氨基烷基自由基,然后该自由基与镍催化的不对称酰化反应。