Engineering an electron-asymmetric Fe2O3–CeO2 nanowire array heterostructure for efficient nitrogen reduction reaction under ambient conditions

Abstract

Electrochemical N2 reduction to NH3 synthesis offers a green and sustainable alternative to the Haber–Bosch process. However, the extreme inertness of N2 molecules makes the decomposition under neutral conditions extremely difficult. Therefore, it is necessary to develop a highly active and selective electrocatalyst to drive the nitrogen reduction reaction under ambient conditions to produce NH3. Herein, we report the development of an electron-asymmetric Fe2O3–CeO2 nanowire array (Fe2O3–CeO2 NA) heterostructure as an efficient NRR electrocatalyst for ambient NH3 synthesis. In 0.1 M Na2SO4, the Fe2O3–CeO2 NA achieves a high Faradaic efficiency (12.6%) and a large NH3 yield (36.76 µg h−1 mgcat−1) at −0.3 V vs. reversible hydrogen electrode. DFT calculations indicate that the uneven distribution of charges caused by the asymmetric structure results in a high catalytic activity for the central Ce atom.

Graphical abstract: Engineering an electron-asymmetric Fe2O3–CeO2 nanowire array heterostructure for efficient nitrogen reduction reaction under ambient conditions

Supplementary files

Article information

Article type
Research Article
Submitted
03 Jan 2026
Accepted
20 Jan 2026
First published
21 Jan 2026

Mater. Chem. Front., 2026, Advance Article

Engineering an electron-asymmetric Fe2O3–CeO2 nanowire array heterostructure for efficient nitrogen reduction reaction under ambient conditions

J. Xian, Y. Gou, Y. Mu, M. Huang, S. Zhang and Y. Ji, Mater. Chem. Front., 2026, Advance Article , DOI: 10.1039/D6QM00003G

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