Zeitschrift für anorganische und allgemeine Chemie · 2013 · 19 citations · 35 references
Materials ScienceInorganic ChemistryChemical EngineeringApplied ChemistryEngineeringPhotoredox ProcessPhotochemistryInorganic PhotochemistryAbstract Ksbwo 6Ksbwo 6–Solid-state ChemistrySynthetic PhotochemistryPhotocatalysisKsbwo 6Photocatalytic StudyChemistrySol‐gel SynthesisPhotoelectrochemistry
Abstract KSbWO 6 was prepared by sol‐gel method. N‐doped KSbWO 6 (KSbWO 6– x N x ) was obtained by heating KSbWO 6 and urea at 400 °C. Both the compounds are characterized by powder X‐ray diffraction (XRD), TEM, SEM‐EDS, X‐ray photo electronic spectroscopy (XPS), and UV/Vis diffuse reflectance spectroscopy (UV‐DRS). A shift in the peak positions of powder XRD and XPS spectra was observed. The band gap energy ( E g ) of KSbWO 6 and N‐doped KSbWO 6 was obtained from their diffused reflectance spectra. E g was reduced from 3.17 eV to 2.56 eV upon nitrogen doping in KSbWO 6 . The reduction of the E g is attributed to the lifting of valence band of N‐doped KSbWO 6 , due to the mixing of O 2p states with N 2p states. The photocatalytic activity of both the samples was studied by degradation of methylene blue (MB). The nitrogen doped KSbWO 6 shows higher photocatalytic activity compared to that of KSbWO 6 .
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