Oxidative removal of dibenzothiophene in a biphasic system using sol–gel FeTiO2 catalysts and H2O2 promoted with acetic acid
Autor: | Lifang Chen, M. E. Llanos, Jin An Wang, U. Arellano, S. P. Paredes Carrera, M. Asomoza, O. A. González Vargas, Michael T. Timko |
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Rok vydání: | 2014 |
Předmět: |
Thermal desorption spectroscopy
General Chemical Engineering Organic Chemistry Inorganic chemistry Energy Engineering and Power Technology Hexadecane Catalysis chemistry.chemical_compound Acetic acid Fuel Technology Adsorption chemistry Dibenzothiophene Temperature-programmed reduction Phase-transfer catalyst |
Zdroj: | Fuel. 126:16-25 |
ISSN: | 0016-2361 |
DOI: | 10.1016/j.fuel.2014.02.028 |
Popis: | Fe TiO 2 catalysts were synthesized with the sol–gel method and were characterized by X-ray diffraction, N 2 adsorption measurement, Mossbauer spectroscopy, UV–vis spectroscopy, Raman spectroscopy, temperature programmed reduction, and temperature programmed desorption of NH 3 . The Fe TiO 2 catalysts chiefly consist of crystalline anatase. Fe 3+ ions are highly dispersed on the surface and distributed in octahedral-coordinate sites within different environments in TiO 2 . The Fe TiO 2 catalysts were then evaluated for oxidation desulfurization of dibenzothiophene in a biphasic reaction mixture consisting of an acidified polar phase and a hexadecane model fuel phase. Compared to control tests, the catalytic activity for dibenzothiophene (DBT) oxidation is markedly improved by addition of acetic acid, typically at least doubling DBT conversion compared to that observed under control conditions. Under optimal conditions (10 wt% Fe in the Fe TiO 2 catalyst and a pH adjusted to 0), 100% of the 300 ppm DBT initially present in the reaction mixture could be completely oxidized within 5 min. Oxidation of DBT formed sulfoxide/sulfones which were found to be enriched in the polar phase. The sol–gel Fe TiO 2 catalysts possess several attributes which may contribute to their activity for DBT oxidation: (1) their hydrophilic–hydrophobic character that facilitates DBT oxidation as a phase transfer catalyst; (2) coordination and activation of acetic acid and peroxyacetic acid with Fe 3+ and Ti 4+ present at the Fe TiO 2 surface, and (3) formation of superoxides at the Fe TiO 2 surface. |
Databáze: | OpenAIRE |
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