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Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification

Effectively reducing the concentration of nitrogen-containing compounds (NCCs) remains a significant but challenging task in environmental restoration. In this work, a novel step-scheme (S-scheme) SnO(2)@MCr heterojunction was successfully fabricated via a facile hydrothermal method. At this heteroj...

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Detalles Bibliográficos
Autores principales: Liang, Ruowen, Wang, Shihui, Lu, Yi, Yan, Guiyang, He, Zhoujun, Xia, Yuzhou, Liang, Zhiyu, Wu, Ling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708904/
https://www.ncbi.nlm.nih.gov/pubmed/34946648
http://dx.doi.org/10.3390/molecules26247566
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author Liang, Ruowen
Wang, Shihui
Lu, Yi
Yan, Guiyang
He, Zhoujun
Xia, Yuzhou
Liang, Zhiyu
Wu, Ling
author_facet Liang, Ruowen
Wang, Shihui
Lu, Yi
Yan, Guiyang
He, Zhoujun
Xia, Yuzhou
Liang, Zhiyu
Wu, Ling
author_sort Liang, Ruowen
collection PubMed
description Effectively reducing the concentration of nitrogen-containing compounds (NCCs) remains a significant but challenging task in environmental restoration. In this work, a novel step-scheme (S-scheme) SnO(2)@MCr heterojunction was successfully fabricated via a facile hydrothermal method. At this heterojunction, MIL-101(Cr) octahedrons are decorated with highly dispersed SnO(2) quantum dots (QDs, approximate size 3 nm). The QDs are evenly wrapped around the MIL-101(Cr), forming an intriguing zero-dimensional/three-dimensional (0D/3D) S-scheme heterostructure. Under simulated sunlight irradiation (280 nm < λ < 980 nm), SnO(2)@MCr demonstrated superior photoactivity toward the denitrification of pyridine, a typical NCC. The adsorption capacity and adsorption site of SnO2@MCr were also investigated. Tests using 20%SnO(2)@MCr exhibited much higher activity than that of pure SnO(2) and MIL-101(Cr); the reduction ratio of Cr(VI) is rapidly increased to 95% after sunlight irradiation for 4 h. The improvement in the photocatalytic activity is attributed to (i) the high dispersion of SnO(2) QDs, (ii) the binding of the rich adsorption sites with pyridine molecules, and (iii) the formation of the S-scheme heterojunction between SnO(2) and MIL-101(Cr). Finally, the photocatalytic mechanism of pyridine was elucidated, and the possible intermediate products and degradation pathways were discussed.
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spelling pubmed-87089042021-12-25 Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification Liang, Ruowen Wang, Shihui Lu, Yi Yan, Guiyang He, Zhoujun Xia, Yuzhou Liang, Zhiyu Wu, Ling Molecules Article Effectively reducing the concentration of nitrogen-containing compounds (NCCs) remains a significant but challenging task in environmental restoration. In this work, a novel step-scheme (S-scheme) SnO(2)@MCr heterojunction was successfully fabricated via a facile hydrothermal method. At this heterojunction, MIL-101(Cr) octahedrons are decorated with highly dispersed SnO(2) quantum dots (QDs, approximate size 3 nm). The QDs are evenly wrapped around the MIL-101(Cr), forming an intriguing zero-dimensional/three-dimensional (0D/3D) S-scheme heterostructure. Under simulated sunlight irradiation (280 nm < λ < 980 nm), SnO(2)@MCr demonstrated superior photoactivity toward the denitrification of pyridine, a typical NCC. The adsorption capacity and adsorption site of SnO2@MCr were also investigated. Tests using 20%SnO(2)@MCr exhibited much higher activity than that of pure SnO(2) and MIL-101(Cr); the reduction ratio of Cr(VI) is rapidly increased to 95% after sunlight irradiation for 4 h. The improvement in the photocatalytic activity is attributed to (i) the high dispersion of SnO(2) QDs, (ii) the binding of the rich adsorption sites with pyridine molecules, and (iii) the formation of the S-scheme heterojunction between SnO(2) and MIL-101(Cr). Finally, the photocatalytic mechanism of pyridine was elucidated, and the possible intermediate products and degradation pathways were discussed. MDPI 2021-12-14 /pmc/articles/PMC8708904/ /pubmed/34946648 http://dx.doi.org/10.3390/molecules26247566 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liang, Ruowen
Wang, Shihui
Lu, Yi
Yan, Guiyang
He, Zhoujun
Xia, Yuzhou
Liang, Zhiyu
Wu, Ling
Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification
title Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification
title_full Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification
title_fullStr Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification
title_full_unstemmed Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification
title_short Assembling Ultrafine SnO(2) Nanoparticles on MIL-101(Cr) Octahedrons for Efficient Fuel Photocatalytic Denitrification
title_sort assembling ultrafine sno(2) nanoparticles on mil-101(cr) octahedrons for efficient fuel photocatalytic denitrification
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708904/
https://www.ncbi.nlm.nih.gov/pubmed/34946648
http://dx.doi.org/10.3390/molecules26247566
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