Literature DB >> 25628229

Thermal and shape stability of high-index-faceted rhodium nanoparticles: a molecular dynamics investigation.

Xiang-Ming Zeng1, Rao Huang, Yu-Hua Wen, Shi-Gang Sun.   

Abstract

Nanosized noble metallic particles enclosed by high-index facets exhibit superior catalytic activity because of their high density of low-coordinated step atoms at the surface, and thus have attracted growing interest over the past decade. In this article, we employed molecular dynamics simulations to investigate the thermodynamic evolution of tetrahexahedral Rh nanoparticles respectively covered by {210}, {310}, and {830} facets during the heating process. Our results reveal that the {210} faceted nanoparticle exhibits better thermal and shape stability than the {310} and {830} faceted ones. Meanwhile, because the {830} facet consists of {210} and {310} subfacets, the stability of the {830} faceted Rh nanoparticle is dominated by the {310} subfacet, which possesses a relatively poor stability. Furthermore, the shape transformation of these nanoparticles occurs much earlier than their melting. Further analyses indicate that surface atoms with higher coordination numbers display lower surface diffusivity, and are thus more helpful for stabilizing the particle shape. This study offers an atomistic understanding of the thermodynamic behaviors of high-index-faceted Rh nanoparticles.

Entities:  

Year:  2015        PMID: 25628229     DOI: 10.1039/c4cp05032k

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  1 in total

1.  Hydrogen Oxidation on Stepped Rh Surfaces: µm-Scale versus Nanoscale.

Authors:  M Datler; I Bespalov; S Buhr; J Zeininger; M Stöger-Pollach; J Bernardi; G Rupprechter; Y Suchorski
Journal:  Catal Letters       Date:  2016-08-23       Impact factor: 3.186

  1 in total

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