4.7 Article

Photocatalytic oxidation of ceftiofur sodium under UV-visible irradiation using plasmonic porous Ag-TiO2 nanospheres

Journal

JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY
Volume 105, Issue -, Pages 384-392

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.jiec.2021.09.038

Keywords

Plasmonic AgNPs; Photocatalytic oxidation of ceftiofur sodium; Hydroxyl radicals; Porous TiO2 nanospheres; Eco-toxicity assay

Funding

  1. FONDECYT INICIACIN project, Government of Chile [11190600]
  2. Deanship of Scientific Research, King Khalid University [R.G.P. 2/139/1442]

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The study obtained porous anatase TiO2 nanospheres decorated with plasmonic silver nanoparticles, which showed enhanced photocatalytic activity in the removal of antibiotic pollutants. Characterization and toxicity analysis indicated that the oxidation products generated from the process were environmentally benign.
In this study, 250 nm sized porous anatase TiO2 nanospheres (TiO2 NSPs) composed of similar to 10 nm sized anatase TiO2 nanoparticles are obtained through a green synthetic route and their surfaces have been decorated with 3-4 nm sized plasmonic silver nanoparticles (AgNPs). Photoluminescence studies confirm that the AgNPs presence on TiO2 NSPs surface effectively inhibits the radiative charge recombination and thus facilitates charge separation process at the Ag-TiO2 NSPs interface, causing an enhanced photocatalytic activity. About 92% of the ceftiofur sodium (CFS) antibiotic taken initially is oxidized by Ag-TiO2 NSPs upon 90 min white light irradiation, while Ag loaded Degussa P25 TiO2 nanoparticles effects only 71% CFS oxidation. The synergistic effect given by plasmonic AgNPs and the continuous framework of anatase TiO2 NPs contributes to inhibit the electron-hole recombination in the Ag-TiO2 NSPs. Oxidation products of CFS in different water sources and their eco-toxicity effects identified through LC-MS and microtoxbioassays, respectively, indicate that the obtained oxidation products are non-toxic compared to pure CFS. Therefore, porous Ag-TiO2 NSPs could be successfully applied in photocatalytic oxidation technologies, exploiting sunlight for the effective removal of pharmaceutical pollutants from wastewater. (C) 2021 The Korean Society of Industrial and Engineering Chemistry. Published by Elsevier B.V. All rights reserved.

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