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A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole

Sulfate radical (SO(4)˙(−)) based oxidation technologies have been widely used in the remediation of antibiotic-containing wastewater. Activated persulfates are efficient reagents for achieving SO(4)˙(−), but the storage and transportation of concentrated persulfates present associated safety issues...

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Autores principales: Wang, Shixiang, Wang, Guangsheng, Fu, Yongsheng, Wang, Hongbin, Liu, Yiqing
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/PMC9058648/
https://www.ncbi.nlm.nih.gov/pubmed/35518228
http://dx.doi.org/10.1039/d0ra05962e
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author Wang, Shixiang
Wang, Guangsheng
Fu, Yongsheng
Wang, Hongbin
Liu, Yiqing
author_facet Wang, Shixiang
Wang, Guangsheng
Fu, Yongsheng
Wang, Hongbin
Liu, Yiqing
author_sort Wang, Shixiang
collection PubMed
description Sulfate radical (SO(4)˙(−)) based oxidation technologies have been widely used in the remediation of antibiotic-containing wastewater. Activated persulfates are efficient reagents for achieving SO(4)˙(−), but the storage and transportation of concentrated persulfates present associated safety issues. In this study, bisulfite (BS) was used as an alternative precursor for replacing persulfates, and a simple advanced oxidation system (Fe(3+)/BS) for generating SO(4)˙(−) and hydroxyl radical (HO˙) was formulated and evaluated for removing sulfamethoxazole (SMX) from contaminated water. The initial pH, dosages of Fe(3+) and BS, as well as the water matrix were investigated to improve the SMX degradation. The results indicated that 1 μmol L(−1) SMX was completely removed within 5 min at optimum initial pH of 4.0, Fe(3+) dosage of 10 μmol L(−1), BS dosage of 100 μmol L(−1) and temperature of 25 °C. The presence of HCO(3)(−) and natural organic matter (NOM) showed obviously negative effects on SMX degradation, while Cu(2+) could slightly promote the degradation of SMX if its concentration was in an appropriate range (∼1 μmol L(−1)). Scavenger quenching experiments confirmed the presence of SO(4)˙(−) and HO˙, which resulted in efficient SMX degradation in the Fe(3+)/BS system. During the radical chain reactions, Fe(2+) and Fe(3+) could be converted into each other to form self-circulation in this system. The degradation pathway of SMX by Fe(3+)/BS was proposed including hydroxylation and bond cleavage.
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spelling pubmed-90586482022-05-04 A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole Wang, Shixiang Wang, Guangsheng Fu, Yongsheng Wang, Hongbin Liu, Yiqing RSC Adv Chemistry Sulfate radical (SO(4)˙(−)) based oxidation technologies have been widely used in the remediation of antibiotic-containing wastewater. Activated persulfates are efficient reagents for achieving SO(4)˙(−), but the storage and transportation of concentrated persulfates present associated safety issues. In this study, bisulfite (BS) was used as an alternative precursor for replacing persulfates, and a simple advanced oxidation system (Fe(3+)/BS) for generating SO(4)˙(−) and hydroxyl radical (HO˙) was formulated and evaluated for removing sulfamethoxazole (SMX) from contaminated water. The initial pH, dosages of Fe(3+) and BS, as well as the water matrix were investigated to improve the SMX degradation. The results indicated that 1 μmol L(−1) SMX was completely removed within 5 min at optimum initial pH of 4.0, Fe(3+) dosage of 10 μmol L(−1), BS dosage of 100 μmol L(−1) and temperature of 25 °C. The presence of HCO(3)(−) and natural organic matter (NOM) showed obviously negative effects on SMX degradation, while Cu(2+) could slightly promote the degradation of SMX if its concentration was in an appropriate range (∼1 μmol L(−1)). Scavenger quenching experiments confirmed the presence of SO(4)˙(−) and HO˙, which resulted in efficient SMX degradation in the Fe(3+)/BS system. During the radical chain reactions, Fe(2+) and Fe(3+) could be converted into each other to form self-circulation in this system. The degradation pathway of SMX by Fe(3+)/BS was proposed including hydroxylation and bond cleavage. The Royal Society of Chemistry 2020-08-17 /pmc/articles/PMC9058648/ /pubmed/35518228 http://dx.doi.org/10.1039/d0ra05962e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Shixiang
Wang, Guangsheng
Fu, Yongsheng
Wang, Hongbin
Liu, Yiqing
A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole
title A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole
title_full A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole
title_fullStr A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole
title_full_unstemmed A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole
title_short A simple Fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole
title_sort simple fe(3+)/bisulfite system for rapid degradation of sulfamethoxazole
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058648/
https://www.ncbi.nlm.nih.gov/pubmed/35518228
http://dx.doi.org/10.1039/d0ra05962e
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