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Enhanced stability of sub-nanometric iridium decorated graphitic carbon nitride for H2 production upon hydrous hydrazine decomposition†

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URI: http://hdl.handle.net/10498/29630

DOI: 10.1039/d2cp04387d

ISSN: 1463-9076

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2023_0596.pdf (1.883Mb)
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Author/s
Bellomi, Silvio; Barlocco, Ilaria; Chen, XiaoweiAuthority UCA; Delgado Jaén, Juan JoséAuthority UCA; Arrigo, Rosa; Dimitratos, Nikolaos; Roldan, Alberto; Villa, Alberto
Date
2022-11-30
Department
Ciencia de los Materiales e Ingeniería Metalúrgica y Química Inorgánica
Source
Physical Chemistry Chemical Physics. Vol. 25, nº 2, pp. 30 November 2022, 1081 - 1095
Abstract
Stabilizing metal nanoparticles is vital for large scale implementations of supported metal catalysts, particularly for a sustainable transition to clean energy, e.g., H2 production. In this work, iridium sub-nanometric particles were deposited on commercial graphite and on graphitic carbon nitride by a wet impregnation method to investigate the metal-support interaction during the hydrous hydrazine decomposition reaction. To establish a structure-activity relationship, samples were characterized by transmission electron microscopy and X-ray photoelectron spectroscopy. The catalytic performance of the synthesized materials was evaluated under mild reaction conditions, i.e. 323 K and ambient pressure. The results showed that graphitic carbon nitride (GCN) enhances the stability of Ir nanoparticles compared to graphite, while maintaining remarkable activity and selectivity. Simulation techniques including Genetic Algorithm geometry screening and electronic structure analyses were employed to provide a valuable atomic level understanding of the metal-support interactions. N anchoring sites of GCN were found to minimise the thermodynamic driving force of coalescence, thus improving the catalyst stability, as well as to lead charge redistributions in the cluster improving the resistance to poisoning by decomposition intermediates.
Subjects
Carbon nitride; Catalyst poisoning; Electronic structure; Genetic algorithms; High resolution transmission electron microscopy; Hydrazine; Hydrogen production; Metal nanoparticles; X ray photoelectron spectroscopy
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  • Articulos Científicos CC. Mat. [566]
Atribución-NoComercial 4.0 Internacional
This work is under a Creative Commons License Atribución-NoComercial 4.0 Internacional

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