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Embedded Fe-Cu Pairs Enable Tandem Nitrate-to-Ammonia Electroreduction

  • Yuxiao Liu (Co-first Author)
  • , Xia Zhang (Co-first Author)
  • , Solmaz Feizpoor
  • , Hsiao-Chien Chen
  • , Linfeng Li
  • , Yunpeng Zuo
  • , Shengji Tian
  • , Mengni Liu
  • , Wenyu Hu
  • , Muhammad Humayun
  • , Kaifu Huo
  • , Chade Lv
  • , Yuanjie Pang
  • , Dingsheng Wang
  • , Xin Wang*
  • , Chundong Wang*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

6 Downloads (CityUHK Scholars)

Abstract

Electrochemical nitrate reduction (e-NO3RR) to ammonia (NH3) represents a transformative technology that seamlessly integrates environmental remediation with resource regeneration. This approach is crucial for restoring equilibrium in the global nitrogen cycling, advancing green chemistry, and accelerating the transition toward a sustainable circular economy. However, under pH-neutral conditions, the simultaneous occurrence of two competing reactions (Hydrogen Evolution Reaction and NO3RR) at the same active sites results in considerable interference, significantly limiting the catalytic efficiency and selectivity. Here a Fe-Cu pair (Cu-N3/Fe3-N8) electrocatalyst is meticulously designed, achieving a NH3 production rate of 18.83 mg·h-1·mgcat-1 at -0.65 V versus the reversible hydrogen electrode (RHE), accompanied with a Faradaic efficiency of 97.1%. This as-prepared Fe-Cu pair overcomes the limitations of conventional bimetallic catalysts, which typically rely on direct atomic coupling. The electron-deficient region formed by Cu-N3 enhances the adsorption of nitrate, while the electron-rich domain generated by the Fe3-N8 cluster facilitates the adsorption of nitrite and promotes water activation. The spatially separated charge gradient optimizes the adsorption energies of multi-step reaction intermediates, thereby establishing a relay mechanism. The work provides valuable insights into the design of multi-active-site electrocatalysts and offers a promising approach to addressing critical challenges in nitrogen resource conversion. © 2025 The Author(s). Advanced Materials published by Wiley-VCH GmbH.
Original languageEnglish
Article numbere14840
Number of pages11
JournalAdvanced Materials
DOIs
Publication statusOnline published - 2 Oct 2025

Funding

This work was financially supported by the National Key R&D Program of China (Grants No. 2024YFE0211300), and the National Natural Science Foundation of China (Grants Nos. 52272202 and W2421027). X.W. acknowledges the grants from the City University of Hong Kong (Grant Nos. 9020005, 9610663, and 7020103) and ITF–RTH – Global STEM Professorship (9446008). The computation is completed in the HPC Platform of Huazhong University of Science and Technology. This work was supported by the User Experiment Assist System of Shanghai Synchrotron Radiation Facility (SSRF) and FULI INSTRUMENTS for the technical assistance provided by their gas chromatograph F80 in these experiments. M.H. and C.D.W. would like to acknowledge Prince Sultan University.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Research Keywords

  • active hydrogen
  • ammonia
  • bimetallic electrocatalyst
  • e-NO3RR
  • three-step relay mechanism

Publisher's Copyright Statement

  • This full text is made available under CC-BY 4.0. https://creativecommons.org/licenses/by/4.0/

RGC Funding Information

  • RGC-funded

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