Application of XANES spectra to supported catalysts
Citation
T. Tanaka et al., Application of XANES spectra to supported catalysts, JPN J A P 1, 38, 1999, pp. 30-35
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Abstract
XANES spectroscopy is applied to the characterization of surface species of
supported catalysts. In case of vanadium oxide supported on silica (V2O5/S
iO2) at low loadings, comparison of the vanadium Ii-edge XANES spectrum wit
h the spectra of the authentic samples allowed the determination that the s
urface species is a VO4 tetrahedron where three oxygen atoms of the four ar
e linked to silica support. The coordination environment changed easily by
adsorption of water molecules, indicating the direct attachment of water mo
lecules to vanadium atoms. A platinum particle of Pt-sulfated ZrO2, known a
s a catalyst promoting super acidic reactions, consists of a core of platin
um metal particle and surface layers of platinum oxide. The analysis of XAN
ES spectrum of the catalyst sample by using those of Pt metal and alpha-PtO
2 goves the fraction of alpha-PtO2. Fe ions in Fe, Mn-sulfated ZrO2 catalys
t, knowing as a catalyst promoting super acidic reactions, were found to be
present inside the ZrO2 as a solid solution and the ions does not directly
participate in the super acidic reaction, Mn ions are the site of adsorpti
on of reactant gas molecules. The in situ XANES spectra at Fe K-edge did no
t change throughout the reaction and those at Mn K-edge were affected by in
troduction of reaction gas. Europium amide complex in zeolite is a mixture
of trivalent and divalent Eu species. Eu divalent species is an active spec
ies for a base-catalyzed reaction. The fraction of Eu divalent species coul
d be determined by danalysis of,XANES spectra of Eu L-3-edge. The analysis
applied to Pt XANES spectra can be applied to the XANES spectra of Rh/TiO2
at Rh K-edge. In the case of a Rh/TiO2 photocatalyst, the reactivity of the
catalyst varies with the loading amount of . XANES analysis of the Rh/TiO2
catalysts showed that surface rhodium species are a mixture of Rh metal an
d highly dispersed Rh2O3 and the fraction of Rh2O3 varies with the loading
amount. We found that Ph atoms are present as an oxide form at low loadings
even after heating the catalyst in the presence of hydrogen at 673 K.