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dc.contributor.author Han, B[Han, Byungchan] ko
dc.contributor.author Viswanathan, V[Viswanathan, Venkatasubramanian] ko
dc.contributor.author Pitsch, H[Pitsch, Heinz] ko
dc.date.available 2017-07-11T06:56:34Z -
dc.date.created 2017-04-10 -
dc.date.issued 2012-03-15 -
dc.identifier.citation Journal of Physical Chemistry C, v.116, no.10, pp.6174 - 6183 -
dc.identifier.issn 1932-7447 -
dc.identifier.uri http://hdl.handle.net/20.500.11750/3381 -
dc.description.abstract We apply a rigorous computational procedure combining ab initio DFT calculations and statistical mechanics based methods to examine the electrocatalytic activity of the unreconstructed Pt(100) surface for oxygen reduction reaction. Using the cluster expansion formalism, we obtain stable interfacial water structures using Monte Carlo simulations carried out using parametrized interactions of water-water and water-metal. We find that both long-range and multibody interactions are important to describe the adsorbate interactions as a consequence of the mismatch between the preferred "hexagonal" water overlayer and the underlying square symmetry of the (100) surface. Our results indicate that the stable interfacial water structure is substantially different from that found on the Pt(111) surface. We compute the potential-dependent equilibrium coverages of oxygen-containing adsorbates, which shows that the surface is poisoned by strongly adsorbed OH. We construct the free-energy diagram of intermediates for oxygen reduction reaction on the Pt(100) surface and find that the limiting step is the reduction of the strongly adsorbed OH. We also find that, at a given potential, a higher degree of poisoning by OH is the reason unreconstructed (100) surfaces are catalytically less active than (111) surfaces. This study shows the importance of accurately capturing atomistic interactions beyond the nearest neighbor pairs. © 2012 American Chemical Society. -
dc.publisher American Chemical Society -
dc.subject Ab Initio -
dc.subject Adsorbate Interactions -
dc.subject Adsorbates -
dc.subject Atomistic Interactions -
dc.subject Calculations -
dc.subject Cluster Expansion -
dc.subject Computational Procedures -
dc.subject Density Functional Theory -
dc.subject DFT Calculation -
dc.subject Electrocatalytic Activity -
dc.subject Electrolytic Reduction -
dc.subject First-Principles -
dc.subject Free-Energy Diagrams -
dc.subject Higher-Degree -
dc.subject Interfacial Water Structure -
dc.subject Limiting Step -
dc.subject Monte-Carlo Method -
dc.subject Monte-Carlo Simulation -
dc.subject Multi-Body Interactions -
dc.subject Nearest Neighbors -
dc.subject Oxygen Reduction Reaction -
dc.subject Platinum -
dc.subject Potential-Dependent -
dc.subject Pt(100) -
dc.subject Pt(111) -
dc.subject Reaction Intermediates -
dc.subject Statistical Mechanics -
dc.subject Surface Reactions -
dc.subject Water-Water -
dc.title First-Principles Based Analysis of the Electrocatalytic Activity of the Unreconstructed Pt(100) Surface for Oxygen Reduction Reaction -
dc.type Article -
dc.identifier.doi 10.1021/jp2075379 -
dc.identifier.wosid 000301509600026 -
dc.identifier.scopusid 2-s2.0-84858331219 -
dc.type.local Article(Overseas) -
dc.type.rims ART -
dc.description.journalClass 1 -
dc.contributor.nonIdAuthor Viswanathan, V[Viswanathan, Venkatasubramanian] -
dc.contributor.nonIdAuthor Pitsch, H[Pitsch, Heinz] -
dc.identifier.citationVolume 116 -
dc.identifier.citationNumber 10 -
dc.identifier.citationStartPage 6174 -
dc.identifier.citationEndPage 6183 -
dc.identifier.citationTitle Journal of Physical Chemistry C -
dc.type.journalArticle Article -
dc.contributor.affiliatedAuthor Han, B[Han, Byungchan] -
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