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Optical, structural and electrochromic properties of sputter deposited W-Mo oxide thin films

Gesheva, Kostadinka (författare)
Central Laboratory of Solar Energy and New Energy Sources, Bulgarian Academy of Sciences
Arvizu, Miguel A (författare)
Uppsala universitet,Fasta tillståndets fysik
Bodurov, Georgij (författare)
Central Laboratory of Solar Energy and New Energy Sources, Bulgarian Academy of Sciences
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Ivanova, Tatiana (författare)
Central Laboratory of Solar Energy and New Energy Sources, Bulgarian Academy of Sciences
Niklasson, Gunnar A., 1953- (författare)
Uppsala universitet,Fasta tillståndets fysik
Iliev, M (författare)
Institute of Solid State Physics, Bulgarian Academy of Sciences
Vlakhov, T (författare)
Institute of Solid State Physics, Bulgarian Academy of Sciences
Terzijska, P (författare)
Institute of Solid State Physics, Bulgarian Academy of Sciences
Popkirov, G (författare)
Central Laboratory of Solar Energy and New Energy Sources, Bulgarian Academy of Sciences
Abrashev, M (författare)
Faculty of Physics, Sofia University, Bulgaria
Boyadjiev, Stefan (författare)
Institute of Solid State Physics, Bulgarian Academy of Sciences
Jagerszki, G (författare)
MTA-BME Technical Analytical Chemistry Research Group, Budapest, Hungary
Szilagyi, I M (författare)
MTA-BME Technical Analytical Chemistry Research Group, Budapest, Hungary
Marinov, Yordan (författare)
Institute of Solid State Physics, Bulgarian Academy of Sciences
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 (creator_code:org_t)
2016-11-15
2016
Engelska.
Ingår i: INERA CONFERENCE. - : Institute of Physics Publishing (IOPP).
  • Konferensbidrag (refereegranskat)
Abstract Ämnesord
Stäng  
  • Thin metal oxide films were investigated by a series of characterization techniques including impedance spectroscopy, spectroscopic ellipsometry, Raman spectroscopy, and Atomic Force Microscopy. Thin film deposition by reactive DC magnetron sputtering was performed at the Ångström Laboratory. W and Mo targets (5 cm diameter) and various oxygen gas flows were employed to prepare samples with different properties, whereas the gas pressure was kept constant at about 30 mTorr. The substrates were 5×5 cm2 plates of unheated glass pre-coated with ITO having a resistance of 40 ohm/sq. Film thicknesses were around 300nm as determined by surface profilometry. Newly acquired equipment was used to study optical spectra, optoelectronic properties, and film structure. Films of WO3 and of mixed W–Mo oxide with three compositions showed coloring and bleaching under the application of a small voltage. Cyclic voltammograms were recorded with a scan rate of 5 mV s–1. Ellipsometric data for the optical constants show dependence on the amount of MoOx in the chemical composition. Single MoOx film, and the mixed one with only 8% MoOx have the highest value of refractive index, and similar dispersion in the visible spectral range. Raman spectra displayed strong lines at wavenumbers between 780 cm–1 and 950 cm–1 related to stretching vibrations of WO3, and MoO3. AFM gave evidence for domains of different composition in mixed W-Mo oxide films.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Nanoteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Nano-technology (hsv//eng)

Nyckelord

Engineering Science with specialization in Solid State Physics
Teknisk fysik med inriktning mot fasta tillståndets fysik

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