Surface Faceting and Reconstruction of Ceria Nanoparticles
Фасетирование и реконструкция поверхности наночастиц диоксида церия
2016-12-07
SCID: 54.1/7ae6f2r3
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CO probe moleculeCeria nanoparticlesSurface facetingSurface reconstruction{111} nanofacets
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Abstract (AI)
The surface atomic arrangement of metal oxides determines their physical and chemical properties, and the ability to control and optimize structural parameters is of crucial importance for many applications, in particular in heterogeneous catalysis and photocatalysis. Whereas the structures of macroscopic single crystals can be determined with established methods, for nanoparticles (NPs), this is a challenging task. Herein, we describe the use of CO as a probe molecule to determine the structure of the surfaces exposed by rod-shaped ceria NPs. After calibrating the CO stretching frequencies using results obtained for different ceria single-crystal surfaces, we found that the rod-shaped NPs actually restructure and expose {111} nanofacets. This finding has important consequences for understanding the controversial surface chemistry of these catalytically highly active ceria NPs and paves the way for the predictive, rational design of catalytic materials at the nanoscale.
Key Findings
1
CO probe molecules were used to determine the surface structures of rod-shaped ceria nanoparticles.
2
CO stretching frequencies were calibrated against measurements on different ceria single-crystal surfaces.
3
Rod-shaped ceria nanoparticles restructure and expose {111} nanofacets, contrary to assumptions based solely on their morphology.
4
The finding helps explain controversial surface chemistry in catalytically active ceria nanoparticles and supports rational nanoscale catalyst design.
Research Object
rod-shaped ceria nanoparticles
Research Subject
surface atomic structure and reconstruction, specifically the formation of exposed {111} nanofacets
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Publication Date
2016-12-07
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