Registro completo de metadatos
Campo DC Valor Lengua/Idioma
dc.rights.licenseReconocimiento-NoComercial-SinObraDerivada 4.0 Internacional. (CC BY-NC-ND)-
dc.contributor.authorTejera, G.es
dc.contributor.authorTeliz, E.es
dc.contributor.authorFaccio, R.es
dc.contributor.authorFernández-Werner, L.es
dc.contributor.authorDíaz, V.es
dc.date.accessioned2026-04-22T19:21:36Z-
dc.date.issued2026-04-15-
dc.identifier.urihttps://hdl.handle.net/20.500.12381/5500-
dc.description.abstractProton exchange membrane water electrolysis (PEMWE) is a key technology for sustainable hydrogen production, yet long-term stability remains a challenge. This study evaluates degradation mechanisms in a 25 cm² catalyst-coated membrane electrolyzer cell using IrO₂/RuO₂ as anodic and Pt-based cathodic electrocatalysts, under both potentiostatic and galvanostatic conditions, and investigates the effect of acid-based regeneration. Under 2.0 V potentiostatic operation, current density declined steadily, particularly in the initial phase, stabilizing at ~204 µA/h·cm². Galvanostatic operation required ~50 mV more to maintain target current, indicating performance loss. Post-immersion in 1 M H₂SO₄, partial performance recovery was observed, but subsequent degradation accelerated to ~860 µA/h·cm², highlighting the regeneration’s limited durability. Electrochemical impedance spectroscopy (EIS) showed faradaic processes degrade earlier and more severely than mass transport, especially at 2.3 V. Increasing ohmic resistance indicated membrane dehydration and loss of interfacial integrity. No fluoride was detected, excluding chemical attack by oxidizing species. X-ray diffraction revealed peak broadening and cathodic Pt disorder, partially reversible upon regeneration. SEM-EDS analysis showed no new elements, suggesting structural reorganization. Loss of (Ru,Ir)O₂ phases at the anode post-regeneration indicated irreversible damage. These results confirm that degradation arises from both kinetic and structural factors, and that regeneration only temporarily mitigates performance losseses
dc.description.sponsorshipAgencia Nacional de Investigación e Innovaciónes
dc.language.isoenges
dc.publisherElsevieres
dc.relationhttps://hdl.handle.net/20.500.12381/5307-
dc.relationhttps://hdl.handle.net/20.500.12381/5315-
dc.relationhttps://hdl.handle.net/20.500.12381/5318-
dc.relationhttps://hdl.handle.net/20.500.12381/5498-
dc.relationhttps://hdl.handle.net/20.500.12381/5499-
dc.rightsAcceso embargado*
dc.sourceFueles
dc.subjectEISes
dc.subjectMembrane electrode assemblieses
dc.subjectWater PEM electrolyzeres
dc.subjectGreen hydrogenes
dc.subjectDegradationes
dc.subjectElectrolysises
dc.titleDegradation Pathways in PEM Water Electrolyzers: Insights from Nafion N115 Membranes with Pt Black and Ir-Ru Oxide Catalystses
dc.typeArtículoes
dc.subject.aniiIngeniería y Tecnología-
dc.subject.aniiOtras Ingenierías y Tecnologías-
dc.identifier.aniiPHV_X_2024_1_184611es
dc.type.versionRevisadoes
dc.rights.embargoend2028-04-15*
dc.rights.embargoreasonTras revisar las políticas de la revista, observamos que sólo puede subir esta versión con un embargo de 24 meses (https://openpolicyfinder.jisc.ac.uk/publication/16905).*
dc.identifier.doihttps://doi.org/10.1016/j.fuel.2025.137919-
dc.anii.institucionresponsableUniversidad de la República. Facultad de Ingenieríaes
dc.rights.embargoterm2028-04-15*
dc.anii.subjectcompleto//Ingeniería y Tecnología/Otras Ingenierías y Tecnologías/Otras Ingenierías y Tecnologíases
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