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Sol-Gel Processing and Characterization of Pure and Metal-Doped SnO2 Thin Films

TitoloSol-Gel Processing and Characterization of Pure and Metal-Doped SnO2 Thin Films
Tipo di pubblicazioneArticolo su Rivista peer-reviewed
Anno di Pubblicazione2001
AutoriEpifani, M., Alvisi Marco, Mirenghi L., Leo G., Siciliano P., and Vasanelli L.
RivistaJournal of the American Ceramic Society
Volume84
Paginazione48-54
ISSN00027820
Parole chiaveChloride based inorganic sol-gel route, Doping (additives), evaporation, Film roughness, Fourier transform infrared spectroscopy, Grain size and shape, Hydrolysis, Metal dopants, Metals, Morphology, Sol-gel processing, Sol-gels, Solvents, Surface roughness, Thermoanalysis, Thin films, Tin compounds, Tin oxides
Abstract

A chloride-based inorganic sol-gel route was used for preparing pure and metal (osmium, nickel, palladium, platinum)-doped SnO2 sol. SnCl4 was first reacted with propanol, then the resulting compound was hydrolyzed and subsequently mixed with solutions of the metal dopants. The obtained sols were used for depositing thin films by spin coating or for preparing powders by solvent evaporation at 110°C. FTIR spectroscopy and thermal analysis of the powders revealed that chlorine still bound to tin stabilized the sol against gelation by hindering the condensation reactions. Film characterizations showed that platinum and palladium, unlike nickel and osmium, were likely to form nanoparticles in the SnO2 lattice. This result was discussed with regard to the different ways that platinum and palladium, on one hand, and nickel and osmium, on the other, modified the growth of SnO2 grains and the film roughness and morphology. Dopants that formed nanoparticles (platinum, palladium) resulted in the roughest film, while dopants that did not form particles (nickel, osmium) resulted in SnO2 grain size very close to that of pure SnO2.

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URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-0035241440&partnerID=40&md5=3eeb98fdbd0720fb11289f613a9701f9
Citation KeyEpifani200148