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Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR)

A novel photo-Fenton catalytic system for the removal of organic pollutants was presented, including the use of photo-Fenton process and a submerged magnetic separation membrane photocatalytic reactor (SMSMPR). We synthesized TiO(2)–Fe(3)O(4) composites as the photocatalyst and made full use of the...

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Autores principales: Li, Qilong, Kong, Hui, Jia, Rongrong, Shao, Jiahui, He, Yiliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063688/
https://www.ncbi.nlm.nih.gov/pubmed/35515859
http://dx.doi.org/10.1039/c9ra00158a
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author Li, Qilong
Kong, Hui
Jia, Rongrong
Shao, Jiahui
He, Yiliang
author_facet Li, Qilong
Kong, Hui
Jia, Rongrong
Shao, Jiahui
He, Yiliang
author_sort Li, Qilong
collection PubMed
description A novel photo-Fenton catalytic system for the removal of organic pollutants was presented, including the use of photo-Fenton process and a submerged magnetic separation membrane photocatalytic reactor (SMSMPR). We synthesized TiO(2)–Fe(3)O(4) composites as the photocatalyst and made full use of the magnetism of the photocatalyst to realize the recollection of the catalyst from the medium, which is critical to the commercialization of photocatalytic technology for wastewater treatment. The photo-Fenton performance of TiO(2)–Fe(3)O(4) is evaluated with amoxicillin trihydrate (AMX) as a target pollutant. The results indicate that the TiO(2)–Fe(3)O(4)/H(2)O(2) oxidation system shows efficient degradation of AMX. Fe(3)O(4) could not only enhance the heterogeneous Fenton degradation of organic compounds but also allow the photocatalyst to be magnetically separated from treated water. After four reaction cycles, the TiO(2)–Fe(3)O(4) composites still exhibit 85.2% removal efficiency of AMX and show excellent recovery properties. Accordingly, the SMSMPR with the TiO(2)–Fe(3)O(4) composite is a promising way for removing organic pollutants.
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spelling pubmed-90636882022-05-04 Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR) Li, Qilong Kong, Hui Jia, Rongrong Shao, Jiahui He, Yiliang RSC Adv Chemistry A novel photo-Fenton catalytic system for the removal of organic pollutants was presented, including the use of photo-Fenton process and a submerged magnetic separation membrane photocatalytic reactor (SMSMPR). We synthesized TiO(2)–Fe(3)O(4) composites as the photocatalyst and made full use of the magnetism of the photocatalyst to realize the recollection of the catalyst from the medium, which is critical to the commercialization of photocatalytic technology for wastewater treatment. The photo-Fenton performance of TiO(2)–Fe(3)O(4) is evaluated with amoxicillin trihydrate (AMX) as a target pollutant. The results indicate that the TiO(2)–Fe(3)O(4)/H(2)O(2) oxidation system shows efficient degradation of AMX. Fe(3)O(4) could not only enhance the heterogeneous Fenton degradation of organic compounds but also allow the photocatalyst to be magnetically separated from treated water. After four reaction cycles, the TiO(2)–Fe(3)O(4) composites still exhibit 85.2% removal efficiency of AMX and show excellent recovery properties. Accordingly, the SMSMPR with the TiO(2)–Fe(3)O(4) composite is a promising way for removing organic pollutants. The Royal Society of Chemistry 2019-04-23 /pmc/articles/PMC9063688/ /pubmed/35515859 http://dx.doi.org/10.1039/c9ra00158a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Li, Qilong
Kong, Hui
Jia, Rongrong
Shao, Jiahui
He, Yiliang
Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR)
title Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR)
title_full Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR)
title_fullStr Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR)
title_full_unstemmed Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR)
title_short Enhanced catalytic degradation of amoxicillin with TiO(2)–Fe(3)O(4) composites via a submerged magnetic separation membrane photocatalytic reactor (SMSMPR)
title_sort enhanced catalytic degradation of amoxicillin with tio(2)–fe(3)o(4) composites via a submerged magnetic separation membrane photocatalytic reactor (smsmpr)
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063688/
https://www.ncbi.nlm.nih.gov/pubmed/35515859
http://dx.doi.org/10.1039/c9ra00158a
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