Literature DB >> 29808835

DFT calculation of oxygen adsorption on platinum nanoparticles: coverage and size effects.

L G Verga1, J Aarons, M Sarwar, D Thompsett, A E Russell, C-K Skylaris.   

Abstract

Catalysts made of Pt nanoparticles and Pt alloys are considered state-of-the-art catalysts for the anodic and cathodic reactions involved in hydrogen fuel cells. The optimal size of such nanoparticles for each chemical reaction is an unsolved problem that depends on environmental variables, such as reactant concentration, solvent, temperature, etc. From a theoretical point of view, this problem has been tackled mainly by observing how single key adsorbates react with different nanoparticles under controlled conditions. In this work, we use large-scale DFT calculations to examine the interplay between the Pt nanoparticle size and O coverage effects. We examine single O adsorptions for three adsorption sites on cuboctahedral platinum nanoparticles with different sizes. As we grow the nanoparticle size, the binding strength decreases and we observed a quick convergence of the adsorption energies with increasing nanoparticle size, which correlates with the calculated d-band centre for (111) Pt facets on such nanoparticles. We also carried out a detailed study of the effect of oxygen coverage with varying fractions of O monolayer coverage, computing adsorption energies per O atom for Pt55, Pt147 and Pt309 nanoparticles with several O coverages. In general, an increase of O coverage led to weaker adsorption energies per O atom, and when analysing the results in terms of oxygen monolayers, this effect is more pronounced for larger nanoparticles. The O coverage dependency of the adsorption energy per O atom is analysed in terms of the O distribution for each nanoparticle size and electronic changes that the adsorbed oxygen causes to the Pt nanoparticle. In studying nanoparticle size and oxygen coverage effects simultaneously, we offer insights with DFT accuracy to help on heterogeneous catalyst design.

Entities:  

Year:  2018        PMID: 29808835     DOI: 10.1039/c7fd00218a

Source DB:  PubMed          Journal:  Faraday Discuss        ISSN: 1359-6640            Impact factor:   4.008


  3 in total

1.  Facile engineering of silk fibroin capped AuPt bimetallic nanozyme responsive to tumor microenvironmental factors for enhanced nanocatalytic therapy.

Authors:  Ruihao Yang; Shiyan Fu; Ruidong Li; Lei Zhang; Zhigang Xu; Yang Cao; Hongjuan Cui; Yuejun Kang; Peng Xue
Journal:  Theranostics       Date:  2021-01-01       Impact factor: 11.556

2.  Accelerated mapping of electronic density of states patterns of metallic nanoparticles via machine-learning.

Authors:  Kihoon Bang; Byung Chul Yeo; Donghun Kim; Sang Soo Han; Hyuck Mo Lee
Journal:  Sci Rep       Date:  2021-06-02       Impact factor: 4.379

3.  Density Functional Theory and Machine Learning Description and Prediction of Oxygen Atom Chemisorption on Platinum Surfaces and Nanoparticles.

Authors:  David S Rivera Rocabado; Yusuke Nanba; Michihisa Koyama
Journal:  ACS Omega       Date:  2021-07-01
  3 in total

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