Controlled Interruption of Electrochemical Nitrite Reduction for Switchable NH <sub>2</sub> OH and Formamide Synthesis

X Xingmiao Huang S Shijie Xie (State Key Laboratory of Fine Chemical, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, School of Chemical Engineering Dalian University of Technology Dalian P. R. China) Y Yangfan Li (Beijing National Laboratory for Condensed Matter Physics) B Bo Sheng (National &amp; Local Joint Engineering Research Center for Mineral Salt Deep Utilization, School of Chemical Engineering Huaiyin Institute of Technology Huaiyin Institute of Technology Huai'an China) Z Zhenlin Chen (Key Laboratory of Photochemistry, Beijing National Laboratory for Molecular Sciences, Institute of Chemistry) C Chuncheng Chen H Hua Sheng J Jincai Zhao

Abstract

ABSTRACT Electrochemical nitrite reduction has the potential to yield a wide range of nitrogen‐containing products, yet it typically converges to fully reduced NH 3 . Here, we introduce a reduction–interruption strategy that programs the reaction pathway on a Bi@C catalyst through the cooperative regulation of pH and CO, enabling precise control over product distribution. Depending on the coordinated pH–CO environment, nitrite can be selectively intercepted at NH 2 OH or diverted toward C─N coupling. Under optimized alkaline conditions with CO, formamide is produced with a Faradaic efficiency of 80.2% and a yield rate of 204.8 mmol·g cat −1 ·h −1 , while at near‐neutral conditions, the same strategy enhances NH 2 OH Faradaic efficiency to 79.1%. Mechanistic studies reveal that pH governs the reorientation and hydrogen‐bond structure of interfacial water, which dictates active hydrogen (*H) generation kinetics and thereby defines the attainable reduction depth, whether it stops at NH 2 OH or proceeds to deeper deoxygenation to *NH 2 . Only when *H is sufficiently available, *NH 2 then selectively captures CO, redirecting it away from complete hydrogenation. Collectively, we show that multi‐electron electrocatalysis can be programmed by coupling interfacial structural control with targeted molecular trapping, offering a generalizable route to accessing metastable intermediates and expanding nitrogen electrosynthesis beyond ammonia.

Article Details

Volume / Issue Vol. 65, Issue 25
Published June 15, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

X

Xingmiao Huang

S

Shijie Xie

State Key Laboratory of Fine Chemical, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, School of Chemical Engineering Dalian University of Technology Dalian P. R. China

Y

Yangfan Li

Beijing National Laboratory for Condensed Matter Physics

B

Bo Sheng

National &amp; Local Joint Engineering Research Center for Mineral Salt Deep Utilization, School of Chemical Engineering Huaiyin Institute of Technology Huaiyin Institute of Technology Huai'an China

Z

Zhenlin Chen

Key Laboratory of Photochemistry, Beijing National Laboratory for Molecular Sciences, Institute of Chemistry

C

Chuncheng Chen

H

Hua Sheng

J

Jincai Zhao