Oxide-based nanomaterials for fuel cell catalysis: the interplay between supported Pt atoms and particles

dc.contributor.authorLykhach, Yaroslava
dc.contributor.authorBruix Fusté, Albert
dc.contributor.authorFabris, Stefano
dc.contributor.authorPotin, Valérie
dc.contributor.authorMatolínová, Iva
dc.contributor.authorMatolín, Vladimír
dc.contributor.authorLibuda, Jörg
dc.contributor.authorNeyman, Konstantin M.
dc.date.accessioned2017-06-23T10:23:44Z
dc.date.available2018-06-02T22:01:41Z
dc.date.issued2017-06-02
dc.date.updated2017-06-23T10:23:44Z
dc.description.abstractThe concept of single atom catalysis offers maximum noble metal efficiency for the development of low-cost catalytic materials. Among possible applications are catalytic materials for proton exchange membrane fuel cells. In the present review, recent efforts towards the fabrication of single atom catalysts on nanostructured ceria and their reactivity are discussed in the prospect of their employment as anode catalysts. The remarkable performance and the durability of the ceria-based anode catalysts with ultra-low Pt loading result from the interplay between two states associated with supported atomically dispersed Pt and sub-nanometer Pt particles. The occurrence of these two states is a consequence of strong interactions between Pt and nanostructured ceria that yield atomically dispersed species under oxidizing conditions and sub-nanometer Pt particles under reducing conditions. The square-planar arrangement of four O atoms on {100} nanoterraces has been identified as the key structural element on the surface of the nanostructured ceria where Pt is anchored in the form of Pt2+ species. The conversion of Pt2+ species to sub-nanometer Pt particles is triggered by a redox process involving Ce3+ centers. The latter emerge due to either oxygen vacancies or adsorption of reducing agents. The unique properties of the sub-nanometer Pt particles arise from metal-support interactions involving charge transfer, structural flexibility, and spillover phenomena. The abundance of specific adsorption sites similar to those on {100} nanoterraces determines the ideal (maximum) Pt loading in Pt-CeOx films that still allows reversible switching between the atomically dispersed Pt and sub-nanometer particles yielding high activity and durability during fuel cell operation.
dc.format.extent31 p.
dc.format.mimetypeapplication/pdf
dc.identifier.idgrec671978
dc.identifier.issn2044-4753
dc.identifier.urihttps://hdl.handle.net/2445/112812
dc.language.isoeng
dc.publisherRoyal Society of Chemistry
dc.relation.isformatofVersió postprint del document publicat a: https://doi.org/10.1039/c7cy00710h
dc.relation.ispartofCatalysis Science & Technology, 2017
dc.relation.urihttps://doi.org/10.1039/c7cy00710h
dc.rights(c) Lykhach, Yaroslava et al., 2017
dc.rights.accessRightsinfo:eu-repo/semantics/openAccess
dc.sourceArticles publicats en revistes (Ciència dels Materials i Química Física)
dc.subject.classificationCatalitzadors
dc.subject.classificationMaterials nanoestructurats
dc.subject.classificationPiles de combustible
dc.subject.otherCatalysts
dc.subject.otherNanostructured materials
dc.subject.otherFuel cells
dc.titleOxide-based nanomaterials for fuel cell catalysis: the interplay between supported Pt atoms and particles
dc.typeinfo:eu-repo/semantics/article
dc.typeinfo:eu-repo/semantics/acceptedVersion

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