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MnO2-Ir Nanowires: Combining Ultrasmall Nanoparticle Sizes, O-Vacancies, and Low Noble-Metal Loading with Improved Activities towards the Oxygen Reduction Reaction

dc.contributor.authorde Lima, Scarllett Lalesca Santos
dc.contributor.authorPereira, Fellipe S.
dc.contributor.authorde Lima, Roberto Batista
dc.contributor.authorde Freitas, Isabel Cristina Martins
dc.contributor.authorSpadotto, Julio Cesar
dc.contributor.authorConnolly, Brian J.
dc.contributor.authorBarreto, Jade
dc.contributor.authorStavale, Fernando
dc.contributor.authorAguilar Vitorino, Hector
dc.contributor.authorFajardo, Humberto Vieira
dc.date.accessioned2025-09-05T16:36:05Z
dc.description.abstractAlthough clean energy generation utilizing the Oxygen Reduction Reaction (ORR) can be considered a promising strategy, this approach remains challenging by the dependence on high loadings of noble metals, mainly Platinum (Pt). Therefore, efforts have been directed to develop new and efficient electrocatalysts that could decrease the Pt content (e.g., by nanotechnology tools or alloying) or replace them completely in these systems. The present investigation shows that high catalytic activity can be reached towards the ORR by employing 1.8 ± 0.7 nm Ir nanoparticles (NPs) deposited onto MnO<inf>2</inf> nanowires surface under low Ir loadings (1.2 wt.%). Interestingly, we observed that the MnO<inf>2</inf>-Ir nanohybrid presented high catalytic activity for the ORR close to commercial Pt/C (20.0 wt.% of Pt), indicating that it could obtain efficient performance using a simple synthetic procedure. The MnO<inf>2</inf>-Ir electrocatalyst also showed improved stability relative to commercial Pt/C, in which only a slight activity loss was observed after 50 reaction cycles. Considering our findings, the superior performance delivered by the MnO<inf>2</inf>-Ir nanohybrid may be related to (i) the significant concentration of reduced Mn3+ species, leading to increased concentration of oxygen vacancies at its surface; (ii) the presence of strong metal-support interactions (SMSI), in which the electronic effect between MnO<inf>x</inf> and Ir may enhance the ORR process; and (iii) the unique structure comprised by Ir ultrasmall sizes at the nanowire surface that enable the exposure of high energy surface/facets, high surface-to-volume ratios, and their uniform dispersion. © 2022 Elsevier B.V., All rights reserved.
dc.identifier.doi10.3390/nano12173039
dc.identifier.scopus2-s2.0-85137758038
dc.identifier.urihttps://cris.uwiener.edu.pe/handle/001/707
dc.identifier.uuidae3b0ff1-31bf-45ca-8f18-2612b728dcf2
dc.language.isoen
dc.publisherMDPI
dc.relation.citationissue17
dc.relation.citationvolume12
dc.relation.ispartofseriesNanomaterials
dc.relation.issn20794991
dc.rightshttp://purl.org/coar/access_right/c_abf2
dc.titleMnO2-Ir Nanowires: Combining Ultrasmall Nanoparticle Sizes, O-Vacancies, and Low Noble-Metal Loading with Improved Activities towards the Oxygen Reduction Reaction
dc.typehttp://purl.org/coar/resource_type/c_2df8fbb1
dspace.entity.typePublication

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