Carbon‐Confined Fe <sub>3</sub> C/Fe <sub>3</sub> N Janus Interfaces for Selective Nitric Oxide‐to‐Ammonia Electroreduction

J Jialing Song Z Ziqi Wei (International Joint Laboratory of Catalytic Chemistry, State Key Laboratory of Advanced Special Steel, Innovation Institute of Carbon Neutrality, Department of Chemistry, College of Sciences) H Haotian Huang (Shanghai University , , ,) L Lupeng Han (Shanghai University , , ,) B Biyi Huang (Department of Chemistry International Joint Laboratory of Catalytic Chemistry State Key Laboratory of Materials for Advanced Nuclear Energy Innovation Institute of Carbon Neutrality College of Sciences Shanghai University Shanghai China) E Evangelina Pensa (Nanoinstitute Munich, Faculty of Physics) S Sam Fong Yau Li (Department of Chemistry National University of Singapore Singapore Singapore) E Eslam Hamed (Department of Chemistry National University of Singapore Singapore Singapore) F Fun Man Fung (School of Chemistry University College Dublin Dublin Ireland) E Emiliano Cortés (Ludwig-Maximilians-Universität (LMU) , , ,) D Dengsong Zhang (Shanghai University , , ,)

Abstract

ABSTRACT Electrocatalytic nitric oxide reduction to ammonia couples pollutant valorization with sustainable nitrogen conversion, but high activity and selectivity require concurrent control of NO transport, NO activation, and hydrogenation at the gas‐liquid‐solid interface. Here, we report a self‐supported, noble‐metal‐free Fe 3 C/Fe 3 N@C catalyst, composed of earth‐abundant Fe, C, and N, featuring defect‐rich Fe 3 C/Fe 3 N Janus nanostructures confined within graphitic carbon. The catalyst achieves an NH 3 yield rate of 468.3 µmol h −1 cm −2 with a Faradaic efficiency of 94.2% at −0.6 V versus RHE, placing it among the most efficient reported NORR electrocatalysts. Mechanistic studies reveal that the graphitic carbon shell facilitates NO diffusion by alleviating the steric and dynamic constraints imposed by the hydrogen‐bonded water network. At the Janus interface, Fe 3 C sites preferentially adsorb and activate NO, whereas nitrogen‐vacancy‐rich Fe 3 N sites promote H 2 O dissociation to supply reactive *H for subsequent hydrogenation. This spatial coupling of mass‐transfer promotion, NO activation, and interfacial *H generation enables efficient and selective NO‐to‐NH 3 electroreduction. These findings establish carbon‐confined, earth‐abundant carbide/nitride Janus interfaces as a promising design principle for high‐performance NORR catalysts.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 24, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

J

Jialing Song

Z

Ziqi Wei

International Joint Laboratory of Catalytic Chemistry, State Key Laboratory of Advanced Special Steel, Innovation Institute of Carbon Neutrality, Department of Chemistry, College of Sciences

H

Haotian Huang

Shanghai University , , ,

L

Lupeng Han

Shanghai University , , ,

B

Biyi Huang

Department of Chemistry International Joint Laboratory of Catalytic Chemistry State Key Laboratory of Materials for Advanced Nuclear Energy Innovation Institute of Carbon Neutrality College of Sciences Shanghai University Shanghai China

E

Evangelina Pensa

Nanoinstitute Munich, Faculty of Physics

S

Sam Fong Yau Li

Department of Chemistry National University of Singapore Singapore Singapore

E

Eslam Hamed

Department of Chemistry National University of Singapore Singapore Singapore

F

Fun Man Fung

School of Chemistry University College Dublin Dublin Ireland

E

Emiliano Cortés

Ludwig-Maximilians-Universität (LMU) , , ,

D

Dengsong Zhang

Shanghai University , , ,