Modeling Anion Poisoning during Oxygen Reduction on Pt Near-Surface Alloys

Electrolyte effects play an important role in the activity of the oxygen reduction reaction (ORR) of Pt-based electrodes. Herein, we combine a computational model and rotating disk electrode measurements to investigate the effects from phosphate anion poisoning for the ORR on well-defined extended P...

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Detalles Bibliográficos
Autores: Petersen, Amanda S.|||0000-0001-8818-0031, Jensen, Kim D.|||0000-0001-7466-8458, Wan, Hao|||0000-0002-7489-3433, Bagger, Alexander|||0000-0002-6394-029X, Chorkendorff, Ib|||0000-0003-2738-0325, Stephens, Ifan E. L.|||0000-0003-2157-492X, Rossmeisl, Jan|||0000-0001-7749-6567, Escudero-Escribano, María|||0000-0002-6432-3015
Tipo de recurso: artículo
Fecha de publicación:2023
País:España
Institución:Universitat Autònoma de Barcelona
Repositorio:Dipòsit Digital de Documents de la UAB
Idioma:inglés
OAI Identifier:oai:ddd.uab.cat:308323
Acceso en línea:https://ddd.uab.cat/record/308323
https://dx.doi.org/urn:doi:10.1021/acscatal.2c04808
Access Level:acceso abierto
Palabra clave:Oxygen reduction reaction
Platinum
Near-surface alloys
Density functional theory
Anion
Adsorption
Descripción
Sumario:Electrolyte effects play an important role in the activity of the oxygen reduction reaction (ORR) of Pt-based electrodes. Herein, we combine a computational model and rotating disk electrode measurements to investigate the effects from phosphate anion poisoning for the ORR on well-defined extended Pt surfaces. We construct a model including the poisoning effect from phosphate species on Pt(111) and Cu/Pt(111) based on density functional theory simulations. By varying the subsurface Cu content of the Cu/Pt(111) alloy, we tune the *OH binding energies on the surface by means of ligand effects, and as a result, we tune the ORR activity. We have investigated the effect of adsorbed phosphate species at low overpotentials when tuning *OH binding energies. Our results display a direct scaling relationship between adsorbed *OH and phosphate species. From the model, we observe how the three-fold binding sites of phosphate anions limit the packing of poisoning phosphate on the surface, thus allowing for *OH adsorption even when poisoned. Our work shows that, regardless of surface site blockage from phosphate, the trend in the catalytic oxygen reduction activity is predominantly governed by the *OH binding.