Opening gates to oxygen reduction reactions on Cu(111) surface

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Abstract

Electrocatalytic reduction of oxygen is composed of multiple steps, including the diffusionadsorption- dissociation of molecular oxygen. This study explores the role of electrical double layer in aqueous medium in quantifying the rate of these coupled electrochemical processes at the electrode interface during oxygen reduction. The electronic, energetic, and configurational aspects of molecular oxygen diffusion and adsorption onto Cu(111) in water are identified through density functional theory based computations. The liquid phase on Cu(111) is modeled with hexagonal-ordered water bilayers, at two slightly different structures, with O-H bonds either facing the vacuum or the metal surface. The results indicate that the energetically preferred structure of water bilayers and adsorption configuration of O2 are different in cathodic and anodic potentials. The diffusion of O2 is found to be heavily hindered at the water/metal interface because of the ordering of water molecules in bilayers as compared to the bulk liquid. The unique correlations of diffusion and adsorption kinetics with water structure identified in this work can provide clues for improving oxygen reduction efficiency.

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Sumer, A., & Chaudhuri, S. (2015). Opening gates to oxygen reduction reactions on Cu(111) surface. Journal of Chemical Physics, 142(12). https://doi.org/10.1063/1.4914901

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