In Situ Electrochemical Reconstruction of Cation‐Vacancy‐Enriched Ni@Ni <sub>2</sub> P Particles in Hollow N‐Doped Carbon Nanofibers for Efficient Nitrate Reduction

R Rong Gao J Jiangwei Zhang (College of Energy Materials and Chemistry, College of Chemistry and Chemical Engineering) G Guilan Fan (School of Chemistry and Chemical Engineering Inner Mongolia Key Laboratory of Low Carbon Catalysis Inner Mongolia University Hohhot 010021 China) X Xiaosong Wang F Fengyu Ding (School of Chemistry and Chemical Engineering Inner Mongolia Key Laboratory of Low Carbon Catalysis Inner Mongolia University Hohhot 010021 China) Y Yan Guo C Chenhui Han (School of Chemistry and Chemical Engineering Inner Mongolia University Hohhot P.R. China) Y Yuliang Gao (School of Chemistry and Chemical Engineering Inner Mongolia University Hohhot P.R. China) A Ao Shen J Junfang Ding (School of Chemistry and Chemical Engineering Inner Mongolia Key Laboratory of Low Carbon Catalysis Inner Mongolia University Hohhot 010021 China) L Limin Wu (School of Chemistry and Chemical Engineering) X Xiaojun Gu (School of Chemistry and Chemical Engineering)

Abstract

Abstract Electrochemical nitrate (NO 3 − ) reduction to ammonia (NH 3 ) under ambient conditions is promising to promote the artificial nitrogen cycling. Despite the development of transition metal‐based catalysts, their incident in situ electrochemical reconstruction always leads to the ambiguity of veritable active sites and reaction mechanisms. In this work, we report an approach to encapsulate Ni@Ni 2 P particles with cationic Ni vacancies in hollow N‐doped carbon nanofibers (designated Ni@Ni 2‐ x P@N‐CNFs) for electrocatalytic NO 3 − reduction to NH 3 and have investigated their surface reconstruction and reaction mechanisms using various in situ electrochemical characterizations and theoretical calculations. Specially, the regulation of cationic Ni vacancy concentration in the three defective Ni@Ni 2‐ x P@N‐CNFs catalysts leads to the 3.92‐fold NH 3 yield rate difference at −0.2 V versus RHE. During the electrocatalytic reaction process, new amorphous Ni(OH) 2 and NiOOH species form on the surface of Ni@Ni 2‐ x P@N‐CNFs and the stable amorphous Ni(OH) 2 species benefits the generation of more active hydrogen (*H) for hydrogenation with NO 3 − . This is further verified by the different reaction rate‐determining steps on the pristine and reconstructed defective catalysts. Integration of the optimized defective catalyst as cathode into a stable aqueous Zn–NO 3 –battery provides high power density and Faraday efficiency for NH 3 .

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

R

Rong Gao

J

Jiangwei Zhang

College of Energy Materials and Chemistry, College of Chemistry and Chemical Engineering

G

Guilan Fan

School of Chemistry and Chemical Engineering Inner Mongolia Key Laboratory of Low Carbon Catalysis Inner Mongolia University Hohhot 010021 China

X

Xiaosong Wang

F

Fengyu Ding

School of Chemistry and Chemical Engineering Inner Mongolia Key Laboratory of Low Carbon Catalysis Inner Mongolia University Hohhot 010021 China

Y

Yan Guo

C

Chenhui Han

School of Chemistry and Chemical Engineering Inner Mongolia University Hohhot P.R. China

Y

Yuliang Gao

School of Chemistry and Chemical Engineering Inner Mongolia University Hohhot P.R. China

A

Ao Shen

J

Junfang Ding

School of Chemistry and Chemical Engineering Inner Mongolia Key Laboratory of Low Carbon Catalysis Inner Mongolia University Hohhot 010021 China

L

Limin Wu

School of Chemistry and Chemical Engineering

X

Xiaojun Gu

School of Chemistry and Chemical Engineering