Photocatalytic degradation of pharmaceutical pollutants under UV and visible light using iron-containing metal-ceramic composites | Izvestiya vuzov. Fizika. 2022. № 11. DOI: 10.17223/00213411/65/11/145

Photocatalytic degradation of pharmaceutical pollutants under UV and visible light using iron-containing metal-ceramic composites

The adsorption and photocatalytic activity of iron-containing metal-ceramic composites produced by the self-propagating combustion of aluminum ferrosilicon in nitrogen with the addition of metallic tantalum (0, 5, 10, 15 wt%) during oxidative degradation of pharmaceutical pollutants (chloramphenicol, metamizole, cinnarizine) under UV and visible light was evaluated. The phase composition of the composite materials was determined by X-ray diffraction and infrared spectroscopy. The morphological features and optical properties of the composites were investigated, and the band gaps of the semiconductors included in the ceramic matrix were determined. The acid properties of the surface of the composites were studied using pH-metry and the Hammett indicator. The correlation of the number of surface-active sites and adsorption of pollutants with the corresponding value of pKa was shown, and the mechanisms of adsorption were proposed. Optimal conditions for the oxidative degradation of chloramphenicol (~100%) under visible light were found: a composite (5% Ta) with the addition of H2O2 to combine heterogeneous catalysis with the homogeneous photo-Fenton system.

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Keywords

metal-ceramic composites, acid sites, adsorption, heterogeneous photocatalysis, photo-Fenton process, pharmaceutical pollutants

Authors

NameOrganizationE-mail
Skvortsova L.Ni.National Research Tomsk State Universitylnskvorcova@inbox.ru
Bolgaru K.A.Tomsk Scientific Center of the Siberian Branch of the Russian Academy of Scienceskbolgaru2008@yandex.ru
Kazantseva K.I.National Research Tomsk State Universityxenia.caz@yandex.ru
Tikhonova I.A.National Research Tomsk State Universitytikhonova230324@yandex.ru
Reger A.A.Tomsk Scientific Center of the Siberian Branch of the Russian Academy of Sciencesregerwork1@gmail.com
Dychko K.A.National Research Tomsk State Universitydk@xf.tsu.ru
Всего: 6

References

Ribeiro A.R., Nunes О.С., Pereira Manuel F.R., Silva Adrian M.T. // Environment.Int. - 2015. - V. 75. - P. 33-51.
Huang J., Li R., Li D., et al. //j. Hazardous Mater. - 2020. - V. 386. - P. 121634.
Florent M., Giannakoudakis D. A., Bandosz T. // Appl. Catal. B: Environmental. - 2020. - V. 272. - P. 119038.
Akulinkin A., Bolgaru K., Reger A. // Mater. Lett. - 2021. - V. 305. - P. 130788.
Fang C.M., Orhan E., de Wijs G.A., et al. //j. Mater. Chem. - 2001. - No. 11 - P. 1248-1252.
Orlov V.M., Sedneva T.A. // Inorgan. Mater: Appl. Res. - 2017. - V. 8. - No. 5. - P. 668-673.
Li D., Zeng L., Li B., et al. // Mater. Design. - 2020. - V. 187. - P. 108416.
Ma Y., Fo Y., Wang M., et al. //j. Energy Chem. - 2021. - V. 56. - P. 353-364.
Jin Q., Lu B., Pan Y., et al. // Catal. Today. - 2019. - V. 358. - P. 324-332.
Sherstoboeva M.V., Bavykina A.V., Bolgaru K.A., et al. //j. Chem. Select. - 2020. - No. 5. - P. 1912-1918.
Skvortsova L.N., Bolgaru K.A., Sherstoboeva M.V., Dychko K.A. // Russ. J. Phys. Chem. A. - 2020. - V. 94. - No. 6. - Р. 1248-1253.
Bacardit J., Stotzner, J., Chamarro E. // Industrial Eng. Chem. Res. - 2007. - V. 46. - P. 7615-7619.
Wadley S., Waite T.D. Fenton Processes-Advanced Oxidation Processes for Water and Wastewater Treatment. - London: IWA Publishing, 2004. - P. 111-135.
Mинакова Т.С. Адсорбционные процессы на поверхности твердых тел. - Томск: Изд-во Том. ун-та, 2007. - 284 с.
Слижов Ю.Г., Матвеева Т.Н., Минакова Т.С. // Журн. физ. химии. - 2012. - Т. 86. - № 3. - С. 463-467.
Танабе К. Твердые кислоты и основания. - М.: Мир, 1973. - 183 с.
Нечипоренко А.П., Кудряшова А.И. // ЖПХ. - 1987. - Т. 60. - № 9. - С. 1957-1961.
Нечипоренко А.П. Донорно-акцепторные свойства поверхности твердофазных систем. Индикаторный метод. - СПб.: Лань, 2017. - 284 с.
Gomoyunova M.V., Pronin I.I., Malygin D.E., et al. // Surf. Sci. - 2007. - V. 601. - P. 5069-5076.
Гриценко В.А. // УФН. - 2012. - Т. 182. - Вып. 5. - С. 531-541.
Cheng M., Zeng G., Huang D., et al. // Chem. Eng. J. - 2016. - V. 284. - P. 582-598.
Artukh I.A., Bolgaru K.A., Dychko K.A., et al. //j. ChemistrySelect. - 2021. - No. 6. - P. 10025-10032.
 Photocatalytic degradation of pharmaceutical pollutants under UV and visible light using iron-containing metal-ceramic composites | Izvestiya vuzov. Fizika. 2022. № 11. DOI: 10.17223/00213411/65/11/145

Photocatalytic degradation of pharmaceutical pollutants under UV and visible light using iron-containing metal-ceramic composites | Izvestiya vuzov. Fizika. 2022. № 11. DOI: 10.17223/00213411/65/11/145