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Density functional theory calculations for the hydrogen evolution reaction in an electrochemical double layer on the Pt(111) electrode

Physical Chemistry Chemical Physics · 2007 · Vol. 9(25) · pp. 3241–3250
Egill SkúlasonG. S. KarlbergJan RossmeislThomas BligaardJeff GreeleyHannes JónssonJens K. Nørskov

Abstract

We present results of density functional theory calculations on a Pt(111) slab with a bilayer of water, solvated protons in the water layer, and excess electrons in the metal surface. In this way we model the electrochemical double layer at a platinum electrode. By varying the number of protons/electrons in the double layer we investigate the system as a function of the electrode potential. We study the elementary processes involved in the hydrogen evolution reaction, 2(H(+) + e(-)) --> H(2), and determine the activation energy and predominant reaction mechanism as a function of electrode potential. We confirm by explicit calculations the notion that the variation of the activation barrier with potential can be viewed as a manifestation of the Brønsted-Evans-Polanyi-type relationship between activation energy and reaction energy found throughout surface chemistry.

Electrocatalysts for Energy ConversionElectrochemical Analysis and ApplicationsFuel Cells and Related MaterialsStandard hydrogen electrodeDensity functional theoryElectrochemistryChemistryElectrodeElectrode potentialReversible hydrogen electrodeDouble layer (biology)Chemical physicsStandard electrode potential

MeSH terms

AlgorithmsCationsElectrochemistryElectrodesHydrogenModels, TheoreticalPlatinumProtonsSolventsThermodynamicsWater
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Density functional theory calculations for the hydrogen evolution reaction in an electrochemical double layer on the Pt(111) electrode · Scinovex