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Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets

Herein, high-energy {001} facets and Sn(4+) doping have been demonstrated to be effective strategies to improve the surface characteristics, photon absorption, and charge transport of TiO(2) hierarchical nanospheres, thereby improving their photocatalytic performance. The TiO(2) hierarchical nanosph...

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Autores principales: Sun, Meiling, Kong, Weichong, Zhao, Yunlong, Liu, Xiaolin, Xuan, Jingyue, Liu, Yunyan, Jia, Fuchao, Yin, Guangchao, Wang, Jun, Zhang, Junkai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6915639/
https://www.ncbi.nlm.nih.gov/pubmed/31718073
http://dx.doi.org/10.3390/nano9111603
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author Sun, Meiling
Kong, Weichong
Zhao, Yunlong
Liu, Xiaolin
Xuan, Jingyue
Liu, Yunyan
Jia, Fuchao
Yin, Guangchao
Wang, Jun
Zhang, Junkai
author_facet Sun, Meiling
Kong, Weichong
Zhao, Yunlong
Liu, Xiaolin
Xuan, Jingyue
Liu, Yunyan
Jia, Fuchao
Yin, Guangchao
Wang, Jun
Zhang, Junkai
author_sort Sun, Meiling
collection PubMed
description Herein, high-energy {001} facets and Sn(4+) doping have been demonstrated to be effective strategies to improve the surface characteristics, photon absorption, and charge transport of TiO(2) hierarchical nanospheres, thereby improving their photocatalytic performance. The TiO(2) hierarchical nanospheres under different reaction times were prepared by solvothermal method. The TiO(2) hierarchical nanospheres (24 h) expose the largest area of {001} facets, which is conducive to increase the density of surface active sites to degrade the adsorbed methylene blue (MB), enhance light scattering ability to absorb more incident photons, and finally, improve photocatalytic activity. Furthermore, the Sn(x)Ti(1−x)O(2) (STO) hierarchical nanospheres are fabricated by Sn(4+) doping, in which the Sn(4+) doping energy level and surface hydroxyl group are beneficial to broaden the light absorption range, promote the generation of charge carriers, and retard the recombination of electron–hole pairs, thereby increasing the probability of charge carriers participating in photocatalytic reactions. Compared with TiO(2) hierarchical nanospheres (24 h), the STO hierarchical nanospheres with 5% n(Sn)/n(Ti) molar ratio exhibit a 1.84-fold improvement in photodegradation of MB arising from the enhanced light absorption ability, increased number of photogenerated electron–hole pairs, and prolonged charge carrier lifetime. In addition, the detailed mechanisms are also discussed in the present paper.
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spelling pubmed-69156392019-12-24 Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets Sun, Meiling Kong, Weichong Zhao, Yunlong Liu, Xiaolin Xuan, Jingyue Liu, Yunyan Jia, Fuchao Yin, Guangchao Wang, Jun Zhang, Junkai Nanomaterials (Basel) Article Herein, high-energy {001} facets and Sn(4+) doping have been demonstrated to be effective strategies to improve the surface characteristics, photon absorption, and charge transport of TiO(2) hierarchical nanospheres, thereby improving their photocatalytic performance. The TiO(2) hierarchical nanospheres under different reaction times were prepared by solvothermal method. The TiO(2) hierarchical nanospheres (24 h) expose the largest area of {001} facets, which is conducive to increase the density of surface active sites to degrade the adsorbed methylene blue (MB), enhance light scattering ability to absorb more incident photons, and finally, improve photocatalytic activity. Furthermore, the Sn(x)Ti(1−x)O(2) (STO) hierarchical nanospheres are fabricated by Sn(4+) doping, in which the Sn(4+) doping energy level and surface hydroxyl group are beneficial to broaden the light absorption range, promote the generation of charge carriers, and retard the recombination of electron–hole pairs, thereby increasing the probability of charge carriers participating in photocatalytic reactions. Compared with TiO(2) hierarchical nanospheres (24 h), the STO hierarchical nanospheres with 5% n(Sn)/n(Ti) molar ratio exhibit a 1.84-fold improvement in photodegradation of MB arising from the enhanced light absorption ability, increased number of photogenerated electron–hole pairs, and prolonged charge carrier lifetime. In addition, the detailed mechanisms are also discussed in the present paper. MDPI 2019-11-12 /pmc/articles/PMC6915639/ /pubmed/31718073 http://dx.doi.org/10.3390/nano9111603 Text en © 2019 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
Sun, Meiling
Kong, Weichong
Zhao, Yunlong
Liu, Xiaolin
Xuan, Jingyue
Liu, Yunyan
Jia, Fuchao
Yin, Guangchao
Wang, Jun
Zhang, Junkai
Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets
title Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets
title_full Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets
title_fullStr Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets
title_full_unstemmed Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets
title_short Improving Photocatalytic Degradation Activity of Organic Pollutant by Sn(4+) Doping of Anatase TiO(2) Hierarchical Nanospheres with Dominant {001} Facets
title_sort improving photocatalytic degradation activity of organic pollutant by sn(4+) doping of anatase tio(2) hierarchical nanospheres with dominant {001} facets
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6915639/
https://www.ncbi.nlm.nih.gov/pubmed/31718073
http://dx.doi.org/10.3390/nano9111603
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