One‐Pot Amidation/C─H Halogenation by an Efficient Electrochemical Cascade

S Sudipta Ponra (Department of Medicinal Chemistry, Uppsala Biomedical Centre Uppsala University Uppsala Sweden) R Ruzal Sitdikov (Department of Medicinal Chemistry, Uppsala Biomedical Centre Uppsala University Uppsala Sweden) H Hasil Aman (Shanghai Key Laboratory for Molecular Engineering of Chiral Drugs and State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering) A Alyssio Calis (Department of Medicinal Chemistry, Uppsala Biomedical Centre Uppsala University Uppsala Sweden) G Gergely Laczkó (Institute of Organic Chemistry HUN‐REN Research Centre For Natural Sciences Budapest Hungary) V Virgile Rouffeteau (Chimie Physique et Chimie du Vivant (CPCV), Département de Chimie, École Normale Supérieure, PSL University, Sorbonne Université CNRS Paris France) M Maxime R. Vitale (Chimie Physique et Chimie du Vivant (CPCV), Département de Chimie, École Normale Supérieure, PSL University, Sorbonne Université CNRS Paris France) I Imre Pápai (Institute of Organic Chemistry HUN‐REN Research Centre For Natural Sciences Budapest Hungary) O Oscar Verho

Abstract

ABSTRACT The advancement of sustainable synthetic methodologies is a central goal of modern chemistry, given the societal importance of green chemical practices. Amide groups and halogen atoms are prevalent in chemical and biological systems, with major relevance to both organic and medicinal chemistry. Consequently, there is strong demand for efficient methods that enable amide bond formation and selective halogenation under mild, resource‐efficient conditions. Conventional approaches typically require separate steps, activating reagents, catalysts, or harsh reaction conditions, which limit scalability and sustainability. To address these challenges, we developed a novel electrochemical cascade methodology that unites amide bond formation and electro‐induced C─H halogenation in a single, atom‐economical, and environmentally benign process. This strategy provides streamlined access to halogenated N ‐aryl amides, carbamates, and ureas without additives or co‐reagents. The method's generality and robustness are demonstrated across more than 145 examples, encompassing complex, functional group‐dense scaffolds and pharmaceutically relevant compounds, including successful scale‐up reactions.

Article Details

Volume / Issue Vol. 65, Issue 19
Published May 04, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

S

Sudipta Ponra

Department of Medicinal Chemistry, Uppsala Biomedical Centre Uppsala University Uppsala Sweden

R

Ruzal Sitdikov

Department of Medicinal Chemistry, Uppsala Biomedical Centre Uppsala University Uppsala Sweden

H

Hasil Aman

Shanghai Key Laboratory for Molecular Engineering of Chiral Drugs and State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering

A

Alyssio Calis

Department of Medicinal Chemistry, Uppsala Biomedical Centre Uppsala University Uppsala Sweden

G

Gergely Laczkó

Institute of Organic Chemistry HUN‐REN Research Centre For Natural Sciences Budapest Hungary

V

Virgile Rouffeteau

Chimie Physique et Chimie du Vivant (CPCV), Département de Chimie, École Normale Supérieure, PSL University, Sorbonne Université CNRS Paris France

M

Maxime R. Vitale

Chimie Physique et Chimie du Vivant (CPCV), Département de Chimie, École Normale Supérieure, PSL University, Sorbonne Université CNRS Paris France

I

Imre Pápai

Institute of Organic Chemistry HUN‐REN Research Centre For Natural Sciences Budapest Hungary

O

Oscar Verho