Inner Mongolia Key Laboratory of Green Catalysis, College of Chemistry and Environmental Science, Inner Mongolia Normal University, Hohhot 010022, China.
Inner Mongolia Autonomous Region Animal Epidemic Prevention Center, Hohhot 010020, China.
J Org Chem. 2023 Feb 17;88(4):2140-2157. doi: 10.1021/acs.joc.2c02551. Epub 2023 Jan 26.
Here, we demonstrate that α-C-H and C-N bonds of unactivated secondary amides can be activated simultaneously by the copper catalyst to synthesize α-ketoamides or α-ketoesters in one step, which is a challenging and underdeveloped transformation. Using copper as a catalyst and air as an oxidant, the reaction is compatible with a broad range of acetoamides, amines, and alcohols. The preliminary mechanism studies and density functional theory calculation indicated that the reaction process may undergo first radical α-oxygenation and then transamidation with the help of the resonant six-membered N,O-chelation and molecular oxygen plays a role as an initiator to trigger the transamidation process. The combination of chelation assistance and dioxygen selective oxygenation strategy would substantially extend the modern mild synthetic amide cleavage toolbox, and we envision that this broadly applicable method will be of great interest in the biopharmaceutical industry, synthetic chemistry, and agrochemical industry.
在这里,我们证明了未活化的仲酰胺的α-C-H 和 C-N 键可以被铜催化剂同时活化,以一步法合成α-酮酰胺或α-酮酯,这是一项具有挑战性和欠发达的转化。使用铜作为催化剂和空气作为氧化剂,该反应与广泛的乙酰酰胺、胺和醇兼容。初步的机理研究和密度泛函理论计算表明,反应过程可能首先经历自由基α-氧化,然后在共振六元 N,O-螯合的帮助下进行转酰胺化,分子氧作为引发剂在转酰胺化过程中发挥作用。螯合辅助和氧气选择性氧化策略的结合将大大扩展现代温和合成酰胺裂解工具包,我们设想这种广泛适用的方法将在生物制药、合成化学和农用化学品行业引起极大兴趣。