Infrared driven CO oxidation reactions on isolated platinum cluster oxides, Pt sub(n)O sub(m) super(+)

This collaboration has recently shown that infrared excitation can drive decomposition reactions of molecules on the surface of gas-phase transition metal clusters. We describe here a significant extension of this work to the study of bimolecular reactions initiated in a similar manner. Specifically...

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Veröffentlicht in:Faraday discussions 2012-09, Vol.157, p.213-225
Hauptverfasser: Hermes, Alexander C, Hamilton, Suzanne M, Cooper, Graham A, Kerpal, Christian, Harding, Dan J, Meijer, Gerard, Fielicke, Andre, Mackenzie, Stuart R
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Sprache:eng
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Zusammenfassung:This collaboration has recently shown that infrared excitation can drive decomposition reactions of molecules on the surface of gas-phase transition metal clusters. We describe here a significant extension of this work to the study of bimolecular reactions initiated in a similar manner. Specifically, we have observed the infrared activated CO oxidation reaction (CO sub((ads)) + O sub((ads)) arrow right CO sub(2(g))) on isolated platinum oxide cations, Pt sub(n)O sub(m) super(+). Small platinum cluster oxides Pt sub(n)O sub(m) super(+) (n= 3-7, m= 2, 4), have been decorated with CO molecules and subjected to multiple photon infrared excitation in the range 400-2200 cm super(-1) using the Free Electron Laser for Infrared eXperiments (FELIX). The Pt sub(n)O sub(m)CO super(+) clusters have been characterised by infrared multiple photon dissociation spectroscopy using messenger atom tagging. Evidence is observed for isomers involving both dissociatively and molecularly adsorbed oxygen on the cluster surface. Further information is obtained on the evolution of the cluster structure with number of platinum atoms and CO coverage. In separate experiments, Pt sub(n)O sub(m)CO super(+) clusters have been subjected to infrared heating via the CO stretch around 2100 cm super(-1). On all clusters investigated, the CO oxidation reaction, indicated by CO sub(2) loss and production of Pt sub(n)O sub(m-1) super(+), is found to compete effectively with the CO desorption channel. The experimental observations are compared with the results of preliminary DFT calculations in order to identify both cluster structures and plausible mechanisms for the surface reaction.
ISSN:1359-6640
1364-5498
DOI:10.1039/c2fd20019h