Ultrafast Single Electron Transfer Enables General Visible Light C─X (S, SS, Se) Coupling via Carbonyl Activation

K Kai Feng (Department of Chemical Engineering) Y Yu Qiao J Juanjuan Wang R Rongjie Li W Wei Sun Q Qian Wang X Xiao Liu Y Yibo Shi L Lin Liu Y Yang Zhou X Xuebo Chen

Abstract

Abstract The formation of carbon─heteroatom bonds is a key strategy that enables the modular construction of molecules in synthetic chemistry, but activating inert carbonyl compounds to forge C─X bonds remains a longstanding synthetic challenge. Herein, we report a universal visible light‐driven photocatalytic system that enables efficient C─X (X = SS, S, Se) bond formation under mild, redox–neutral conditions. Guided by Marcus electron transfer theory, we employed a computational redox‐pair screening strategy to identify triplet‐state pathways with optimal electronic coupling matrix element (H if ) and thermodynamic alignment. High‐level multireference calculations confirmed an ultrafast single‐electron transfer mechanism with ultrafast kinetics approaching the diffusion limit. To translate this mechanistic insight into a functional platform, we designed a dual‐functionalization strategy for α‐diketones, wherein one carbonyl acts as a conventional synthon while the other forms a light‐responsive dihydroquinazolinone (DHQZ) radical precursor. This system exhibits broad substrate scope, excellent functional group tolerance, and compatibility with late‐stage functionalization of bioactive scaffolds. Overall, this study establishes a general and mechanistically predictive photocatalytic strategy that transforms Marcus theory from a conceptual foundation into a design principle for efficient, light‐driven C─heteroatom bond construction.

Article Details

Volume / Issue Vol. 64, Issue 52
Published December 22, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

K

Kai Feng

Department of Chemical Engineering

Y

Yu Qiao

J

Juanjuan Wang

R

Rongjie Li

W

Wei Sun

Q

Qian Wang

X

Xiao Liu

Y

Yibo Shi

L

Lin Liu

Y

Yang Zhou

X

Xuebo Chen