Stereodivergent Access to C‐N Atropisomers via Phosphonium Salt‐Enabled Desymmetrizing Remote Cyclization/Aromatization Cascade
Abstract
Abstract In this study, we describe a highly efficient organocatalytic enantiodivergent method for synthesizing C‐N axially chiral compounds via remote asymmetric cycloaddition/aromatization cascade. By leveraging formally remote stereocontrol from two classes of chiral phosphonium salts sharing identical stereogenic elements, prochiral N ‐aryl maleimides undergo asymmetric formal [4 + 2] cycloaddition/aromatization in an atropodivergent manner, affording structurally diverse C‐N axially chiral products. This approach features broad substrate scope and enables practical, atom‐economical synthesis of both enantiomeric configurations of C‐N atropisomers under mild conditions, with high efficiency and excellent enantioselectivity. Notably, an unexpected synergistic desymmetrization/dynamic kinetic resolution process was observed in this transformation. Mechanistic studies elucidated the origin of stereochemical induction. Furthermore, the utility of enantioenriched products is demonstrated through downstream transformations and, specifically, in constructing circularly polarized luminescence (CPL)‐active C‐N axially chiral organic small molecules, which may hold significant potential for chiral optoelectronic applications.
Article Details
Authors (7)
Yan Guo
Siqiang Fang
Department of Chemistry
Lixiang Zhu
Key Laboratory of Green Chemistry & Technology of Ministry of Education College of Chemistry Sichuan University 29 Wangjiang Road Chengdu 610064 P. R. China
Jintong Song
College of Chemistry and Materials Science Sichuan Normal University Chengdu 610068 P. R. China
Jixing Che
Key Laboratory of Green Chemistry & Technology of Ministry of Education College of Chemistry Sichuan University 29 Wangjiang Road Chengdu 610064 P. R. China
Haifeng Xiang
Key Laboratory of Green Chemistry & Technology of Ministry of Education College of Chemistry Sichuan University 29 Wangjiang Road Chengdu 610064 P. R. China
Tianli Wang