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Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure

TiO(2)-SnS(2) composite semiconducting photocatalysts with different building component ratios were prepared by hydrothermal synthesis (TiO(2)-SnS(2)-HT) and by immobilization of commercial TiO(2) and SnS(2) particles (TiO(2)-SnS(2)-COMM). The band gap values, which determine the catalysts’ photoact...

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Autores principales: Kovacic, Marin, Katic, Jozefina, Kusic, Hrvoje, Loncaric Bozic, Ana, Metikos Hukovic, Mirjana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024962/
https://www.ncbi.nlm.nih.gov/pubmed/29921795
http://dx.doi.org/10.3390/ma11061041
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author Kovacic, Marin
Katic, Jozefina
Kusic, Hrvoje
Loncaric Bozic, Ana
Metikos Hukovic, Mirjana
author_facet Kovacic, Marin
Katic, Jozefina
Kusic, Hrvoje
Loncaric Bozic, Ana
Metikos Hukovic, Mirjana
author_sort Kovacic, Marin
collection PubMed
description TiO(2)-SnS(2) composite semiconducting photocatalysts with different building component ratios were prepared by hydrothermal synthesis (TiO(2)-SnS(2)-HT) and by immobilization of commercial TiO(2) and SnS(2) particles (TiO(2)-SnS(2)-COMM). The band gap values, which determine the catalysts’ photoactivity, were examined by diffuse reflectance spectroscopy and Kubelka–Munk transformations. The catalysts’ surface properties: specific surface area, charge and adsorption capacitance at the solid–solution interface were characterized using BET analysis, potentiometric titration and electrochemical impedance spectroscopy, respectively. The electronic band structure of TiO(2)-SnS(2) photocatalyst, as the key property for the solar-driven photocatalysis, was deduced from the thermodynamic data and the semiconducting parameters (type of semiconductivity, concentration of the charge carriers, flat band potential) obtained by Mott–Schottky analysis. The photoactivity of both composites was studied in photocatalytic treatment of diclofenac (DCF) under simulated solar irradiation and was compared to the benchmark photocatalyst (TiO(2) P25) activity. The influence of process parameters, such as pH, H(2)O(2), and composite formulation on the effectiveness of DCF removal and conversion was investigated and discussed by employing response surface modeling (RSM) approach. The photocatalytic efficiency of both composite materials was discussed on the basis of the hetereojunction formation that facilitated the photoelectron transfer, promoting more efficient photocatalytic degradation of DCF.
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spelling pubmed-60249622018-07-09 Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure Kovacic, Marin Katic, Jozefina Kusic, Hrvoje Loncaric Bozic, Ana Metikos Hukovic, Mirjana Materials (Basel) Article TiO(2)-SnS(2) composite semiconducting photocatalysts with different building component ratios were prepared by hydrothermal synthesis (TiO(2)-SnS(2)-HT) and by immobilization of commercial TiO(2) and SnS(2) particles (TiO(2)-SnS(2)-COMM). The band gap values, which determine the catalysts’ photoactivity, were examined by diffuse reflectance spectroscopy and Kubelka–Munk transformations. The catalysts’ surface properties: specific surface area, charge and adsorption capacitance at the solid–solution interface were characterized using BET analysis, potentiometric titration and electrochemical impedance spectroscopy, respectively. The electronic band structure of TiO(2)-SnS(2) photocatalyst, as the key property for the solar-driven photocatalysis, was deduced from the thermodynamic data and the semiconducting parameters (type of semiconductivity, concentration of the charge carriers, flat band potential) obtained by Mott–Schottky analysis. The photoactivity of both composites was studied in photocatalytic treatment of diclofenac (DCF) under simulated solar irradiation and was compared to the benchmark photocatalyst (TiO(2) P25) activity. The influence of process parameters, such as pH, H(2)O(2), and composite formulation on the effectiveness of DCF removal and conversion was investigated and discussed by employing response surface modeling (RSM) approach. The photocatalytic efficiency of both composite materials was discussed on the basis of the hetereojunction formation that facilitated the photoelectron transfer, promoting more efficient photocatalytic degradation of DCF. MDPI 2018-06-19 /pmc/articles/PMC6024962/ /pubmed/29921795 http://dx.doi.org/10.3390/ma11061041 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kovacic, Marin
Katic, Jozefina
Kusic, Hrvoje
Loncaric Bozic, Ana
Metikos Hukovic, Mirjana
Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure
title Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure
title_full Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure
title_fullStr Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure
title_full_unstemmed Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure
title_short Elucidating the Photocatalytic Behavior of TiO(2)-SnS(2) Composites Based on Their Energy Band Structure
title_sort elucidating the photocatalytic behavior of tio(2)-sns(2) composites based on their energy band structure
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024962/
https://www.ncbi.nlm.nih.gov/pubmed/29921795
http://dx.doi.org/10.3390/ma11061041
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