Influence of some sol-gel synthesis parameters of mesoporous TiO2 on photocatalytic degradation of pollutants
Author(s) -
Aleksandar Golubović,
Ivana Veljković,
M. Šćepanović,
M. GrujićBrojčin,
N. Tomić,
Dušan Mijin,
Biljana Babić
Publication year - 2015
Publication title -
chemical industry and chemical engineering quarterly
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.189
H-Index - 26
eISSN - 2217-7434
pISSN - 1451-9372
DOI - 10.2298/ciceq150110020g
Subject(s) - calcination , anatase , photocatalysis , materials science , crystallite , methyl orange , mesoporous material , chemical engineering , rutile , sol gel , titanate , titanium dioxide , nuclear chemistry , inorganic chemistry , mineralogy , ceramic , nanotechnology , chemistry , organic chemistry , catalysis , metallurgy , engineering
The titanium dioxide (TiO2) nanopowders were produced by sol-gel technique from tetrabutyl titanate as a precursor by varying some parameters of the sol-gel synthesis like the temperature (500 and 550 °C) and the duration of the calcination (1.5, 2, and 2.5 h). X-ray powder diffraction (XRPD) results have shown that all synthesized nanopowders are dominantly in anatase phase, with the presence of a small amount of rutile in samples calcined at 550 °C. According to the results obtained by Williamson-Hall method, the anatase crystallite size was increased with the duration of the calcination (from 24 to 29 nm in samples calcined at lower, and from 30 to 35 nm in samples calcined at higher temperature). The analysis of the shift and linewidth of the most intensive anatase Eg Raman mode confirmed the XRPD results. The analysis of pore structure from nitrogen sorption experimental data described all samples as mesoporous, with mean pore diameters in the range of 5-8 nm. Nanopowder properties have been related to the photocatalytic activity, tested in degradation of the textile dye (C.I. Reactive Orange 16), carbofuran and phenol. [Projekat Ministarstva nauke Republike Srbije, br. III45018 i br. ON171032
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