Chlorination‐Induced Symmetry Breaking in Cu Single‐Atom Sites for Boosting Electrocatalytic Nitrate Reduction to Ammonia

P Pengliang Sun (Yunnan Key Laboratory of Ecological Protection and Resource Utilization of River‐lake Networks and the State Key Laboratory of Vegetation Structure Function and Construction School of Ecology and Environmental Science Yunnan University Kunming China) X Xinzhong Wang H Hongyi Li Z Ziyi Li Y Yiwen Su L Lingfeng Xiao (Yunnan Key Laboratory of Ecological Protection and Resource Utilization of River‐lake Networks and the State Key Laboratory of Vegetation Structure Function and Construction School of Ecology and Environmental Science Yunnan University Kunming China) M Menglin Zhou (Yunnan Key Laboratory of Ecological Protection and Resource Utilization of River‐lake Networks and the State Key Laboratory of Vegetation Structure Function and Construction School of Ecology and Environmental Science Yunnan University Kunming China) A Abdukader Abdukayum (Laboratory of Xinjiang Native Medicinal and Edible Plant Resources Chemistry College of Chemistry and Environmental Sciences Kashi University Kashi China) G Guangzhi Hu J Jiashu Chen J Jingyu Sun (Bio-X Institutes, Key Laboratory for the Genetics of Development and Neuropsychiatric Disorders (Ministry of Education), Center for Brain Health and Brain Technology, Global Institute of Future Technology, Institute of Psychology and Behavioral Science, Shanghai Jiao Tong University)

Abstract

ABSTRACT Electrochemical nitrate reduction to ammonia is attractive for green fertilizer synthesis and pollution remediation, yet its performance is normally hindered by the mismatched generation and consumption of active hydrogen (*H). Here, we engineer the planar chloride coordination to break the local symmetry of Cu single atoms over oxygen‐deficient WO 3‐x , forming Cu 1 Cl–WO 3‐ x with Cu–O/Cl and Cu–Cl–W motifs to enable dual interfacial relay of *H and *NO 2 derived intermediates. The Cu 1 Cl–WO 3‐ x catalyst achieves an NH 3 Faradaic efficiency of 99.7% at −0.8 V versus the reversible hydrogen electrode and delivers an NH 3 yield rate up to 63.6 mg h −1 cm −2 at −0.9 V with stable operation. In situ electrochemical characterization and theoretical calculations reveal that the asymmetric Cu–Cl–W interface promotes water dissociation and *H relay, while facilitating thermodynamically favorable *NO 2 relocation and subsequent hydrogenation, thereby shifting the potential‐determining step and lowering the overall energy barrier. This dual‐relay strategy might offer a generic route toward efficient NO 3 − ‐to‐NH 3 electrosynthesis.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 12, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

P

Pengliang Sun

Yunnan Key Laboratory of Ecological Protection and Resource Utilization of River‐lake Networks and the State Key Laboratory of Vegetation Structure Function and Construction School of Ecology and Environmental Science Yunnan University Kunming China

X

Xinzhong Wang

H

Hongyi Li

Z

Ziyi Li

Y

Yiwen Su

L

Lingfeng Xiao

Yunnan Key Laboratory of Ecological Protection and Resource Utilization of River‐lake Networks and the State Key Laboratory of Vegetation Structure Function and Construction School of Ecology and Environmental Science Yunnan University Kunming China

M

Menglin Zhou

Yunnan Key Laboratory of Ecological Protection and Resource Utilization of River‐lake Networks and the State Key Laboratory of Vegetation Structure Function and Construction School of Ecology and Environmental Science Yunnan University Kunming China

A

Abdukader Abdukayum

Laboratory of Xinjiang Native Medicinal and Edible Plant Resources Chemistry College of Chemistry and Environmental Sciences Kashi University Kashi China

G

Guangzhi Hu

J

Jiashu Chen

J

Jingyu Sun

Bio-X Institutes, Key Laboratory for the Genetics of Development and Neuropsychiatric Disorders (Ministry of Education), Center for Brain Health and Brain Technology, Global Institute of Future Technology, Institute of Psychology and Behavioral Science, Shanghai Jiao Tong University