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Synthesis, characterization and structural control of nano crystalline molybdenum oxide MoO3 single phase by low cost technique.

Authors :
Afify, H.H.
Hassan, S.A.
Abouelsayed, A.
Demian, S.E.
Zayed, H.A.
Source :
Materials Chemistry & Physics. Jun2016, Vol. 176, p87-95. 9p.
Publication Year :
2016

Abstract

Thermodynamically stable α- MoO 3 thin film is prepared without any other phases of the molybdenum oxides. Simple and low coast spray pyrolysis technique is used. Growth conditions are optimized to produce pure α- MoO 3 with controlled crystallite size and surface morphology. Small angle (GAXRD) diffractometer is used to elucidate the structure. Profile shape function (PSF) model is made for the experimental data. WinFit software is going first to fit (PSF) to use the refined profile parameters for determination of crystallite size and internal residual strain. The (GAXRD) patterns prove the existence of α- MoO 3 only with layered structure, indicated by the appearance of only (0k0). The calculated crystallite sizes and the strain are found to range from 10 to 28 nm and 0.28%–0.05% respectively. Ultraviolet and Visible transmission measurements were performed over a wavelength range 190–2500 nm on the MoO 3 thin films synthesized by spray pyrolysis technique at different substrate temperature. The two sub-bands corresponds to the electronic transition between the molybdenum oxidation states Mo 4+ , Mo 5+ and Mo 6+ are observed. Quantitative information on the temperature-induced blue shift of the sub-bands was obtained by fitting the spectra with Lorentz functions. The transition from Mo 5+ to Mo 6+ oxidation states show a blue shift up to Tc = 325 °C. Above Tc, the transition Mo 5+ to Mo 6+ increases more drastically, resulting in an anomaly in the temperature-induced shift at Tc. The anomaly can be attributed to the amorphous-to-crystalline phase transition at 325 °C. In addition, both refractive index and extinction coefficient are calculated as a function of substrate temperature. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02540584
Volume :
176
Database :
Academic Search Index
Journal :
Materials Chemistry & Physics
Publication Type :
Academic Journal
Accession number :
114572290
Full Text :
https://doi.org/10.1016/j.matchemphys.2016.03.031