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Interfacial engineering of MoxSy via Boron‐doping for electrochemical N2‐to‐NH3 conversion.

Alsabban, Merfat M.; Peramaiah, Karthik; Genovese, Alessandro; Ahmad, Rafia; Azofra, Luis Miguel; Ramalingam, Vinoth; Hedhili, Mohamed N.; Wehbe, Nimer; Cavallo, Luigi; Huang, Kuo‐Wei

Authors

Merfat M. Alsabban

Karthik Peramaiah

Alessandro Genovese

Rafia Ahmad

Luis Miguel Azofra

Mohamed N. Hedhili

Nimer Wehbe

Luigi Cavallo

Kuo‐Wei Huang



Abstract

The electrocatalytic synthesis of ammonia (NH3) through the nitrogen reduction reaction (NRR) under ambient temperature and pressure is emerging as an alternative approach to the conventional Haber–Bosch process. However, it remains a significant challenge due to poor kinetics, low nitrogen (N2) solubility in aqueous electrolytes, and the competing hydrogen evolution reaction (HER), which can significantly impact NH3 production rates and Faradaic efficiency (FE). Herein, a rationally designed boron-doped molybdenum sulfide (B-Mo-MoxSy) electrocatalyst is reported that effectively enhances N2 reduction to NH3 with an onset potential of −0.15 V versus RHE, achieving a FE of 78% and an NH3 yield of 5.83 µg h⁻¹ cm⁻2 in a 0.05 m H2SO4(aq). Theoretical studies suggest that the effectiveness of NRR originates from electron density redistribution due to boron (B) doping, which provides an ideal pathway for nitrogenous species to bind with electron-deficient B sites. This work demonstrates a significant exploration, showing that Mo-based electrocatalysts are capable of facilitating artificial N2 fixation.

Citation

ALSABBAN, M.M., PERAMAIAH, K., GENOVESE, A., AHMAD, R., AZOFRA, L.M., RAMALINGAM, V., HEDHILI, M.N., WEHBE, N., CAVALLO, L. and HUANG, K.-W. [2024]. Interfacial engineering of MoxSy via Boron-doping for electrochemical N2-to-NH3 conversion. Advanced materials [online], Early View. Available from: https://doi.org/10.1002/adma.202405578

Journal Article Type Article
Acceptance Date Oct 25, 2024
Online Publication Date Nov 4, 2024
Deposit Date Nov 12, 2024
Publicly Available Date Nov 5, 2025
Journal Advanced materials
Print ISSN 0935-9648
Electronic ISSN 1521-4095
Publisher Wiley
Peer Reviewed Peer Reviewed
DOI https://doi.org/10.1002/adma.202405578
Keywords Ammonia; DFT calculation; Electrocatalysis; Nitrogen reducation
Public URL https://rgu-repository.worktribe.com/output/2571961
Additional Information This article has been published with separate supporting information. This supporting information has been incorporated into a single file on this repository and can be found at the end of the file associated with this output.
This output contributes to the following UN Sustainable Development Goals:

SDG 7 - Affordable and Clean Energy

Ensure access to affordable, reliable, sustainable and modern energy for all

SDG 13 - Climate Action

Take urgent action to combat climate change and its impacts

Files

This file is under embargo until Nov 5, 2025 due to copyright reasons.

Contact publications@rgu.ac.uk to request a copy for personal use.





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