A comparison of the reactivity of the lattice nitrogen in tungsten substituted Co3Mo3N and Ni2Mo3N

Article


Al Sobhi, S., AlShibane, I., Catlow, C.R.A., Daisley, A., Hargreaves, J., Hector, A., Higham, M. and Zeinalipour-Yazdi, C. 2023. A comparison of the reactivity of the lattice nitrogen in tungsten substituted Co3Mo3N and Ni2Mo3N. Chemistry-Sustainability-Energy-Materials (ChemSusChem). 16 (22). https://doi.org/10.1002/cssc.202300945
TypeArticle
TitleA comparison of the reactivity of the lattice nitrogen in tungsten substituted Co3Mo3N and Ni2Mo3N
AuthorsAl Sobhi, S., AlShibane, I., Catlow, C.R.A., Daisley, A., Hargreaves, J., Hector, A., Higham, M. and Zeinalipour-Yazdi, C.
Abstract

The effect of the partial substitution of Mo with W in Co3Mo3N and Ni2Mo3N on ammonia synthesis activity and lattice nitrogen reactivity has been investigated. This is of interest as the coordination environment of lattice N is changed by this process. When tungsten was introduced into the metal nitrides by substitution of Mo atoms, the catalytic performance was observed to have decreased. As expected, Co3Mo3N was reduced to Co6Mo6N under a 3 : 1 ratio of H2/Ar. Co3Mo2.6W0.4N was also shown to lose a large percentage of lattice nitrogen under these conditions. The bulk lattice nitrogen in Ni2Mo3N and Ni2Mo2.8W0.2N was unreactive, demonstrating that substitution with tungsten does not have a significant effect on lattice N reactivity. Computational calculations reveal that the vacancy formation energy for Ni2Mo3N is more endothermic than Co3Mo3N. Furthermore, calculations suggest that the inclusion of W does not have a substantial impact on the surface N vacancy formation energy or the N2 adsorption and activation at the vacancy site.

Keywordsammonia; nitrogen; nitride; catalysts
Sustainable Development Goals9 Industry, innovation and infrastructure
Middlesex University ThemeSustainability
PublisherWiley
JournalChemistry-Sustainability-Energy-Materials (ChemSusChem)
ISSN1864-5631
Electronic1864-564X
Publication dates
Online09 Oct 2023
Print22 Nov 2023
Publication process dates
Submitted30 Jun 2023
Accepted13 Sep 2023
Deposited18 Nov 2025
Output statusPublished
Publisher's version
License
File Access Level
Open
Copyright Statement

© 2023 The Authors. ChemSusChem published by Wiley-VCH GmbH

This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

Digital Object Identifier (DOI)https://doi.org/10.1002/cssc.202300945
PubMed ID37703103
LanguageEnglish
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