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Sulfur Mediated Interfacial Proton-Directed Transfer Boosts Electrocatalytic Nitric Oxide Reduction to Ammonia over Dual-Site Catalysts

  • Zhenlin Wang
  • , Haiyan Duan
  • , Wenqiang Qu
  • , Donglin Han
  • , Xingchi Li
  • , Li Zhu
  • , Xuan Jiang
  • , Danhong Cheng
  • , Yongjie Shen
  • , Ming Xie
  • , Emiliano Cortes
  • , Dengsong Zhang
  • Shanghai University
  • University of Toronto
  • Ludwig Maximilian University of Munich
  • Hokkaido University
  • State Key Laboratory of Advanced Special Steel

Research output: Contribution to journalArticlepeer-review

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Abstract

Electrocatalytic nitric oxide reduction reaction (NORR) for ammonia (NH3) synthesis represents a sustainable strategy that simultaneously realizes the nitrogen cycle and resource integration. The key issue hindering the NORR efficiency is accelerating proton (*H) transfer to facilitate NO hydrogenation while inhibiting the hydrogen evolution reaction (HER). Herein, we demonstrate an interface-engineered sulfur-mediated Cu@Co electrocatalyst (S-Cu@Co/C) that boosts NORR performance through dual modulation of electronic structure and proton transfer on active sites. A comprehensive program of experimental and theoretical calculations was employed to discover that sulfur incorporation induces electron redistribution in the Cu–Co interface, creating electron-rich sulfur and electron-deficient metals. This electronic configuration synergistically enhances NO adsorption on Cu sites and promotes water dissociation on Co sites. More critically, sulfur could direct the rapid transfer of *H from Co to Cu sites, thereby accelerating the NO hydrogenation and suppressing HER. Consequently, S-Cu@Co/C achieves an NH3 yield rate of 655.3 µmol h−1 cm−2 in a flow cell and a Faradaic efficiency of 92.4% in an H-cell. Remarkably, the catalyst could maintain continuous electrolysis tests and steady NH3 yield up to 100 h. This work provides innovative insights into the fabrication of efficient electrocatalysts via heteroatom-mediated interfacial engineering strategies.

Original languageEnglish
Article numbere202511398
JournalAngewandte Chemie - International Edition
Volume64
Issue number35
Early online date1 Jul 2025
DOIs
Publication statusPublished - 25 Aug 2025

Data Availability Statement

The data that support the findings of this study are availablefrom the corresponding author upon reasonable request

Funding

This work acknowledges the support from the National Natural Science Foundation of China (22125604; 22436003; 22201102), and the Science and Technology Commission of Shanghai Municipality (23230713700; 24230711600). The authors acknowledge funding and support from the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany´s Excellence Strategy-EXC 2089/1–390776260, the Bavarian Program Solar Technologies Go Hybrid (SolTech), and the Center for NanoScience (CeNS). L.Z. and E.C. acknowledge the LMU-CSC doctoral program for support. Open access funding enabled and organized by Projekt DEAL. This work acknowledges the support from the National Natural Science Foundation of China (22125604; 22436003; 22201102), and the Science and Technology Commission of Shanghai Municipality (23230713700; 24230711600). The authors acknowledge funding and support from the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany´s Excellence Strategy‐EXC 2089/1–390776260, the Bavarian Program Solar Technologies Go Hybrid (SolTech), and the Center for NanoScience (CeNS). L.Z. and E.C. acknowledge the LMU‐CSC doctoral program for support.

Keywords

  • Ammonia synthesis
  • Dual-site catalysts
  • Electrocatalysis
  • Nitric oxide reduction
  • Sulfur-mediated

ASJC Scopus subject areas

  • Catalysis
  • General Chemistry

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