The model oxidation catalyst α-V2O5: insights from contactless in situ microwave permittivity and conductivity measurements
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Robert Schlögl | Maik Eichelbaum | Annette Trunschke | Frank Girgsdies | R. Schlögl | F. Girgsdies | A. Trunschke | Christian Heine | Christian Heine | M. Eichelbaum
[1] Robert Schlögl,et al. Towards Physical Descriptors of Active and Selective Catalysts for the Oxidation of n‐Butane to Maleic Anhydride , 2013 .
[2] C. P. Neo,et al. Microwave Electronics: Measurement and Materials Characterization , 2004 .
[3] W. Jaegermann,et al. Photoelectron spectroscopy study of oxygen vacancy on vanadium oxides surface , 2004 .
[4] F. Cavani,et al. VPO catalyst for n-butane oxidation to maleic anhydride: A goal achieved, or a still open challenge? , 2006 .
[5] R. Schlögl. Active Sites for Propane Oxidation: Some Generic Considerations , 2011 .
[6] D. Dube. Study of Landau-Lifshitz-Looyenga's formula for dielectric correlation between powder and bulk , 1970 .
[7] W. Grünert,et al. Application of Ultraviolet Photoelectron Spectroscopy in the Surface Characterization of Polycrystalline Oxide Catalysts. 2. Depth Variation of the Reduction Degree in the Surface Region of Partially Reduced V2O5 , 2000 .
[8] S. R. Morrison,et al. The Chemical Physics of Surfaces , 1977 .
[9] Claes G. Granqvist,et al. Handbook of inorganic electrochromic materials , 1995 .
[10] Ralf Moos,et al. Catalyst State Observation via the Perturbation of a Microwave Cavity Resonator , 2008 .
[11] S. M. Sze,et al. Physics of semiconductor devices , 1969 .
[12] Robert Schlögl,et al. The microwave cavity perturbation technique for contact-free and in situ electrical conductivity measurements in catalysis and materials science. , 2012, Physical chemistry chemical physics : PCCP.
[13] L. Fiermans,et al. Single crystal V2O5 and lower oxides. A survey of their electronic, optical, structural, and surface properties , 1980 .
[14] R. C. Weast. CRC Handbook of Chemistry and Physics , 1973 .
[15] F. Cavani. Catalytic selective oxidation: The forefront in the challenge for a more sustainable chemical industry , 2010 .
[16] P. Kubelka. Ein Beitrag zur Optik der Farban striche , 1931 .
[17] Y. P. Varshni. Temperature dependence of the energy gap in semiconductors , 1967 .
[18] J. Vennik,et al. Optical Absorption of Defects in V205 Single Crystals: As‐Grown and Reduced V2O5 , 1974 .
[19] V. Ioffe,et al. Comparison of the Small-Polaron Theory with the Experimental Data of Current Transport in V2O5 , 1970 .
[20] H. Looyenga. Dielectric constants of heterogeneous mixtures , 1965 .
[21] H. Clark,et al. 21 Vanadium Oxides as Oxidation Catalysts: Electrical Properties , 1957 .
[22] L. A. Siegel,et al. Vanadium Oxides as Oxidation Catalysts , 1955 .
[23] C. Sanchez,et al. Free and bound polarons in vanadium pentoxide , 1982 .
[24] Andrew G. Glen,et al. APPL , 2001 .
[25] Robert Schlögl,et al. The intimate relationship between bulk electronic conductivity and selectivity in the catalytic oxidation of n-butane. , 2012, Angewandte Chemie.
[26] E. M. Lifshitz,et al. Electrodynamics of continuous media , 1961 .
[27] D. Whitmore,et al. Optical absorption coefficients of vanadium pentoxide single crystals , 1966 .
[28] S. Sze,et al. Metal‐Semiconductor Contacts , 2006 .
[29] W. Bauhofer. Determination of semiconductor energy gaps using the microwave cavity perturbation method , 1981 .
[30] W. Nicholas Delgass,et al. Spectroscopy in Heterogeneous Catalysis , 1979 .