Modulation of hydrogen transfer behaviors over Fe/Cu interfacial sites for a boosted electrocatalytic nitrate reduction reaction

Abstract

An electrocatalytic nitrate reduction reaction (NO3RR) over Cu-based catalysts represents an energetically feasible route for treating nitrogenous wastewater. However, its efficiency remains limited by the sluggish dissociation of H2O, which fails to supply active hydrogen (*H) in time to support the hydrogenation of nitrogenous intermediates. Herein, an in situ electrochemical reconstruction strategy is employed to fabricate FeCu-hydroxide nanoarrays directly on copper foam (R-FeCu-OH/CF NAs); owing to the superior hydrogen transfer ability from Fe sites to Cu sites, the synergistic catalytic process (*NO3 adsorption, *NO3–*NO2 and *NO2 hydrogenation) exhibits favorable thermodynamics. Spectroscopic and theoretical evidence indicates that Fe sites at Fe/Cu interfaces facilitate H2O dissociation, enabling efficient *H transfer to Cu. This process suppresses NO2 accumulation and *H coupling, leading to lower energy barriers for NO3 adsorption and *NO2/*NO to *NOH. The catalyst achieves up to 92% NO3 conversion and nearly 100% N2 selectivity, while providing a stability of up to 60 cycles and a retention of 98%. When deployed as the cathode in a Zn–NO3 battery, the catalyst delivers an open-circuit voltage of 1.27 V and a peak power density of 9.26 mW cm−2, outperforming previously reported electrocatalysts. This work elucidates hydrogen-transfer mechanisms and guides the design of efficient electrohydrogenation reactions.

Graphical abstract: Modulation of hydrogen transfer behaviors over Fe/Cu interfacial sites for a boosted electrocatalytic nitrate reduction reaction

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Article information

Article type
Paper
Submitted
19 Nov 2025
Accepted
30 Jan 2026
First published
03 Feb 2026

Green Chem., 2026, Advance Article

Modulation of hydrogen transfer behaviors over Fe/Cu interfacial sites for a boosted electrocatalytic nitrate reduction reaction

H. Luo, L. Gu, Z. Wu, J. Chen and J. Yang, Green Chem., 2026, Advance Article , DOI: 10.1039/D5GC06182B

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