Acyclic Quaternary Stereocenters via Catalytic Asymmetric Cross‐Couplings with Unactivated Alkyl <i>N</i> ‐Hydroxyphthalimide Esters

L Lian‐Jie Li (Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China) J Jun‐Chun Zhang (Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China) J Jia‐Yu Tang (Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China) H Hui Yu (Hefei National Laboratory for Physical Sciences at the Microscale and Department of Chemistry) Z Ze‐Peng Yang (Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China)

Abstract

Abstract While significant advancements have been made in creating quaternary stereocenters (all‐carbon substituents) within cyclic frameworks, generating acyclic quaternary stereocenters poses a more formidable task due to increased conformational flexibility. Herein, we report an enantioselective synthesis of compounds containing acyclic quaternary stereocenters through an iron‐catalyzed alkylation reaction between an acyclic tertiary alkyl source and an unactivated primary alkyl source. This method not only facilitates the rapid construction of sterically hindered motifs but also effectively enhances the saturation level of the molecule. Key to this method is an outer‐sphere C─C bond formation mechanism, where enantioselectivity is governed by a cooperative triple catalysis system that combines photoredox, chiral Lewis acid, and iron catalysis. A series of compounds featuring acyclic quaternary stereocenters is produced under mild reaction conditions, and various transformations are presented to illustrate the potential applications of this approach. A comprehensive mechanistic study supports the crucial S H 2 (bimolecular homolytic substitution) mechanism.

Article Details

Volume / Issue Vol. 64, Issue 24
Published June 10, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (5)

L

Lian‐Jie Li

Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China

J

Jun‐Chun Zhang

Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China

J

Jia‐Yu Tang

Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China

H

Hui Yu

Hefei National Laboratory for Physical Sciences at the Microscale and Department of Chemistry

Z

Ze‐Peng Yang

Shanghai Key Laboratory of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai 200092 P.R China