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Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes

The Fenton reaction, as an important member of the advanced oxidation processes (AOPs), has gained extensive attention in recent years. However, the practical applications of the traditional Fenton process have been restricted by the poor degradation efficiency and the rigid pH range. In this study,...

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Autores principales: Xiao, Chun, Li, Su, Yi, Fuhao, Zhang, Bo, Chen, Dan, Zhang, Yang, Chen, Hongxin, Huang, Yueli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9053902/
https://www.ncbi.nlm.nih.gov/pubmed/35518336
http://dx.doi.org/10.1039/d0ra03361h
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author Xiao, Chun
Li, Su
Yi, Fuhao
Zhang, Bo
Chen, Dan
Zhang, Yang
Chen, Hongxin
Huang, Yueli
author_facet Xiao, Chun
Li, Su
Yi, Fuhao
Zhang, Bo
Chen, Dan
Zhang, Yang
Chen, Hongxin
Huang, Yueli
author_sort Xiao, Chun
collection PubMed
description The Fenton reaction, as an important member of the advanced oxidation processes (AOPs), has gained extensive attention in recent years. However, the practical applications of the traditional Fenton process have been restricted by the poor degradation efficiency and the rigid pH range. In this study, we report a new strategy regarding the photo-Fenton oxidation of Rhodamine B (RhB) by kaolin–FeOOH (K–Fe) catalysts with the assistance of oxalic acid. It was found that the iron–oxalate complex was formed as oxalic acid was introduced into the K–Fe catalyst system by the chelation ability of oxalate. Benefiting from the high photosensitivity of the iron–oxalate complexes, the K–Fe/oxalic acid/H(2)O(2)/visible light system exhibited excellent catalytic activity towards the degradation of RhB under the optimized reaction conditions [(K–Fe) dosage = 1.0 g L(−1), initial pH = 7.2, (oxalic acid) = 1.0 mM, (H(2)O(2)) = 0.5 mM], and its reaction rate constant for the degradation of RhB was 27.7 times greater than that of the K–Fe/H(2)O(2)/visible light system. More importantly, the K–Fe/oxalic acid/H(2)O(2)/visible system showed remarkable degradation efficiency over a wide pH range (3.3–10.8), which was superior to that of the traditional Fenton system. In addition, the degradation efficiency of RhB was found to remain at 94.7% after five cycles. This work is expected to provide an important approach for the application of the Fenton system.
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spelling pubmed-90539022022-05-04 Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes Xiao, Chun Li, Su Yi, Fuhao Zhang, Bo Chen, Dan Zhang, Yang Chen, Hongxin Huang, Yueli RSC Adv Chemistry The Fenton reaction, as an important member of the advanced oxidation processes (AOPs), has gained extensive attention in recent years. However, the practical applications of the traditional Fenton process have been restricted by the poor degradation efficiency and the rigid pH range. In this study, we report a new strategy regarding the photo-Fenton oxidation of Rhodamine B (RhB) by kaolin–FeOOH (K–Fe) catalysts with the assistance of oxalic acid. It was found that the iron–oxalate complex was formed as oxalic acid was introduced into the K–Fe catalyst system by the chelation ability of oxalate. Benefiting from the high photosensitivity of the iron–oxalate complexes, the K–Fe/oxalic acid/H(2)O(2)/visible light system exhibited excellent catalytic activity towards the degradation of RhB under the optimized reaction conditions [(K–Fe) dosage = 1.0 g L(−1), initial pH = 7.2, (oxalic acid) = 1.0 mM, (H(2)O(2)) = 0.5 mM], and its reaction rate constant for the degradation of RhB was 27.7 times greater than that of the K–Fe/H(2)O(2)/visible light system. More importantly, the K–Fe/oxalic acid/H(2)O(2)/visible system showed remarkable degradation efficiency over a wide pH range (3.3–10.8), which was superior to that of the traditional Fenton system. In addition, the degradation efficiency of RhB was found to remain at 94.7% after five cycles. This work is expected to provide an important approach for the application of the Fenton system. The Royal Society of Chemistry 2020-05-18 /pmc/articles/PMC9053902/ /pubmed/35518336 http://dx.doi.org/10.1039/d0ra03361h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xiao, Chun
Li, Su
Yi, Fuhao
Zhang, Bo
Chen, Dan
Zhang, Yang
Chen, Hongxin
Huang, Yueli
Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes
title Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes
title_full Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes
title_fullStr Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes
title_full_unstemmed Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes
title_short Enhancement of photo-Fenton catalytic activity with the assistance of oxalic acid on the kaolin–FeOOH system for the degradation of organic dyes
title_sort enhancement of photo-fenton catalytic activity with the assistance of oxalic acid on the kaolin–feooh system for the degradation of organic dyes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9053902/
https://www.ncbi.nlm.nih.gov/pubmed/35518336
http://dx.doi.org/10.1039/d0ra03361h
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