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Título
Development of tailored high-performance and durable electrocatalysts for advanced PEM fuel cells
Autor(es)
Palabras clave
Fuel-cell catalyst
Platinum deposition
Electrochemical characterization
Oxygen reduction
Support durability
Synthesis up-scaling
Clasificación UNESCO
2210.05 Electroquímica
2210.28-1 Preparación y Caracterización de Materiales Inorgánicos
2210.28 Química del Estado Sólido
2303 Química Inorgánica
2391 Química Ambiental
Fecha de publicación
2017
Editor
Elsevier
Citación
Mikkel Juul Larsen, Ignacio Jiménez Morales, Sara Cavaliere, Jerzy Zajac, Deborah J. Jones, Jacques Rozière, Luděk Kaluža, Daniela Gulková, Madeleine Odgaard, Development of tailored high-performance and durable electrocatalysts for advanced PEM fuel cells, International Journal of Hydrogen Energy, Volume 42, Issue 10, 2017, Pages 7166-7176, ISSN 0360-3199, https://doi.org/10.1016/j.ijhydene.2016.09.134. (https://www.sciencedirect.com/science/article/pii/S0360319916303809)
Resumen
[EN]A family of novel carbon materials with intermediate surface area and varying morphology and surface chemistry were used to prepare Pt/C catalysts by two different preparation procedures; a chemical impregnation method and a microwave-assisted polyol method. The catalysts were thoroughly characterized, and their electrochemical performance and stability were investigated with rotating disc electrode (RDE) cyclic voltammetric (CV) measurements. The intermediate-surface-area carbon supports gave catalysts with much greater support stability than a widely used standard catalyst. The novel catalysts had lower electrochemical surface area than the reference, but their specific electrocatalytic activity towards the oxygen-reduction reaction (ORR) was much higher, and some of them also featured higher mass-specific ORR activity than the reference. The series of catalysts prepared by the microwave-assisted polyol method featured smaller Pt nanoparticles and higher activities than those prepared by impregnation. On the other hand, the impregnated catalysts showed better durability of the Pt particles. The most promising catalysts were selected and elaborated in further optimized preparation procedures to obtain quantities sufficient for their use in proton-exchange membrane fuel cells (PEMFCs).
URI
ISSN
0360-3199
DOI
10.1016/j.ijhydene.2016.09.134
Versión del editor
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