Cobalt Polypyridyl‐Enabled Highly Regioselective α‐Heteroarylation of <i>N,O</i> ‐Containing Aliphatics Through Photoelectrocatalysis
Abstract
Abstract The regioselective functionalization of C─H bonds at positions with nearly identical chemical environments remains a pivotal challenge in synthetic chemistry. While conventional hydrogen atom transfer (HAT) strategies dominate current methodologies, their limitations in selectivity drive the pursuit of alternative mechanisms. Here, we report a photoelectrochemically cooperative catalytic system mediated by a polypyridyl cobalt catalyst, enabling highly regioselective α‐heteroarylation of ethers, alcohols, and amides. Unlike previous cobalt‐based systems in which bond formation occurs independently of the cobalt metal center, the catalyst functions as a photocatalyst to directly oxidize substrates via a single‐electron transfer (SET) process. This strategy eschews traditional HAT pathways, achieving exclusive α‐site selectivity for most substrates while exhibiting broad adaptability to diverse heteroarenes. Subsequent derivatization studies, including oxidation, hydrolysis, reduction, and chloromethylation, validate the synthetic utility for accessing pharmaceutical intermediates.
Article Details
Authors (8)
Wen Lin
Ting Lv
Tianjin Key Laboratory of Materials Laminating Fabrication and Interface Control Technology School of Materials Science and Engineering Hebei University of Technology Tianjin China
Zhizi Wang
Zhejiang Key Laboratory of Green Manufacturing Technology for Chemical Drugs College of Pharmaceutical Sciences Zhejiang University of Technology Hangzhou 310014 P.R. China
Jintong Xie
Zhejiang Key Laboratory of Green Manufacturing Technology for Chemical Drugs College of Pharmaceutical Sciences Zhejiang University of Technology Hangzhou 310014 P.R. China
Jie Sun
Wenjian Wang
Chaodong Wang
Zhejiang Key Laboratory of Green Manufacturing Technology for Chemical Drugs, College of Pharmaceutical Sciences
Jianjun Li
Zhejiang Key Laboratory of Green Manufacturing Technology for Chemical Drugs, College of Pharmaceutical Sciences