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Size and Topological Effects of Rhodium Surfaces, Clusters and Nanoparticles on the Dissociation of CO

Filot, I.A.W.; Shetty, S.G.; Hensen, E.J.M.; van Santen, R.A.

Journal article 2011
47 Citations Scopus
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Abstract

The present density functional theory study provides insight into the reactivity of the surface metal atoms of extended/periodic Rh surfaces, clusters, and nanoparticles toward CO adsorption and dissociation. Our results demonstrate that the defect site in a B 5 configuration is the most active one for CO dissociation on all three considered systems. However, the reactivity of the B 5 site for CO dissociation depends critically on the size of the system. The barrier for CO dissociation barrier on the B 5 site increases for smaller particles. The lowest barrier is found for the B 5 site of a stepped Rh (211) surface. CO dissociation on this site occurred with a barrier below the desorption energy of CO.

Abstract from OpenAlex , checked 2026-07-01.

Citation

Filot, I.A.W.; Shetty, S.G.; Hensen, E.J.M.; van Santen, R.A. Size and Topological Effects of Rhodium Surfaces, Clusters and Nanoparticles on the Dissociation of CO. J. Phys. Chem. C 2011, 115 (29), 14204-14212. 10.1021/jp201783f

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