Das Suman, Mondal Soumya, Midya Siba P, Mondal Subal, Ghosh Eliza, Ghosh Pradyut
School of Chemical Sciences, Indian Association for the Cultivation of Science, 2A & 2B Raja S. C. Mullick Road, Kolkata, West Bengal 700032, India.
J Org Chem. 2023 Nov 3;88(21):14847-14859. doi: 10.1021/acs.joc.3c00686. Epub 2023 Oct 23.
Herein, we report metal- and photocatalyst-free room-temperature amidation for α-ketoamide synthesis from feedstock phenacyl bromides and amines using molecular oxygen as an oxidant as well as a source of oxygen in the amide segment. Visible light-mediated base-promoted one-pot sequential C-N/C═N/C═O bond formation takes place in a tandem manner to afford the desired product. Functional group tolerance (benzylic alcohol, keto, cyano, nitro, halo, etc.), a broad substrate scope, and gram-scale synthesis make this synthetic methodology more attractive. We have observed that electron-rich aromatic amines, aliphatic amines, and phenacyl bromide derivatives proceeded the present transformation with marginally superior reactivity in comparison to electron-deficient aromatic amines and phenacyl bromide derivatives. Moreover, several control experiments, in situ isolation of secondary amine and imine as key intermediates, and O-labeling experiments provide complete insight into the mechanism of the tandem pathway.
在此,我们报道了一种无金属和光催化剂的室温酰胺化反应,该反应以分子氧作为氧化剂以及酰胺片段中的氧源,由原料苯甲酰溴和胺合成α-酮酰胺。可见光介导的碱促进的一锅法顺序C-N/C═N/C═O键形成以串联方式发生,从而得到所需产物。官能团耐受性(苄醇、酮、氰基、硝基、卤素等)、广泛的底物范围和克级规模合成使这种合成方法更具吸引力。我们观察到,与缺电子芳胺和苯甲酰溴衍生物相比,富电子芳胺、脂肪胺和苯甲酰溴衍生物进行本转化时具有略高的反应活性。此外,一些对照实验、关键中间体仲胺和亚胺的原位分离以及O标记实验提供了对串联途径机理的全面洞察。