Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biochar

In recent years, the removal of new pollutants has been widely concerned. The antibiotic norfloxacin, a typical emerging contaminant, is capable of concentrating in large quantities in the soil and threatening human health. It has been shown that among many removal means, the activation of strong ox...

Full description

Bibliographic Details
Main Authors: Congcong WANG, Jiawei CHEN
Format: Article
Language:zho
Published: Editorial Office of Hydrogeology & Engineering Geology 2024-03-01
Series:Shuiwen dizhi gongcheng dizhi
Subjects:
Online Access:https://www.swdzgcdz.com/en/article/doi/10.16030/j.cnki.issn.1000-3665.202311017
_version_ 1827309695590727680
author Congcong WANG
Jiawei CHEN
author_facet Congcong WANG
Jiawei CHEN
author_sort Congcong WANG
collection DOAJ
description In recent years, the removal of new pollutants has been widely concerned. The antibiotic norfloxacin, a typical emerging contaminant, is capable of concentrating in large quantities in the soil and threatening human health. It has been shown that among many removal means, the activation of strong oxidants by iron-based biochar is an efficient and inexpensive in-situ removal method. The content, valence, and loading of iron are the key factors affecting the catalytic activity; however, how to maximize its removal capacity has not been explored yet. This study systematically investigated the effects of pyrolysis temperature and biomass particle size of iron-based biochar on the efficient removal of norfloxacin, a typical antibiotic in soil. The degradation efficiency and capacity of different iron-based biochar for norfloxacin were obtained using batch experiments; the key mechanisms of norfloxacin degradation were explored by free radical quenching experiments combined with multiple characterizations. The results show that the iron-based biochar prepared at 900 °C pyrolysis temperature and small biomass particle size (75~150 μm) exhibit the best removal efficiency and is able to degrade norfloxacin completely within 10 min. Furthermore, it can maintain a 50% degradation capacity after three times use. The mechanism analysis indicates that the non-radical pathway dominates this degradation process by singlet oxygen, while the sulfate and hydroxyl radicals play auxiliary roles. The catalytic oxidation system constructed in this study has high degradation efficiency of norfloxacin, high applicability to environmental pH, and low risk of secondary contamination. It is expected to be used for the remediation of norfloxacin-type contamination in the soil.
first_indexed 2024-04-24T19:45:59Z
format Article
id doaj.art-2574a0b22cbe4043919ca1bd81cad19b
institution Directory Open Access Journal
issn 1000-3665
language zho
last_indexed 2024-04-24T19:45:59Z
publishDate 2024-03-01
publisher Editorial Office of Hydrogeology & Engineering Geology
record_format Article
series Shuiwen dizhi gongcheng dizhi
spelling doaj.art-2574a0b22cbe4043919ca1bd81cad19b2024-03-25T06:39:17ZzhoEditorial Office of Hydrogeology & Engineering GeologyShuiwen dizhi gongcheng dizhi1000-36652024-03-01512667610.16030/j.cnki.issn.1000-3665.202311017202311017Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biocharCongcong WANG0Jiawei CHEN1School of Earth Sciences and Resources, China University of Geosciences, Beijing 100083, ChinaSchool of Earth Sciences and Resources, China University of Geosciences, Beijing 100083, ChinaIn recent years, the removal of new pollutants has been widely concerned. The antibiotic norfloxacin, a typical emerging contaminant, is capable of concentrating in large quantities in the soil and threatening human health. It has been shown that among many removal means, the activation of strong oxidants by iron-based biochar is an efficient and inexpensive in-situ removal method. The content, valence, and loading of iron are the key factors affecting the catalytic activity; however, how to maximize its removal capacity has not been explored yet. This study systematically investigated the effects of pyrolysis temperature and biomass particle size of iron-based biochar on the efficient removal of norfloxacin, a typical antibiotic in soil. The degradation efficiency and capacity of different iron-based biochar for norfloxacin were obtained using batch experiments; the key mechanisms of norfloxacin degradation were explored by free radical quenching experiments combined with multiple characterizations. The results show that the iron-based biochar prepared at 900 °C pyrolysis temperature and small biomass particle size (75~150 μm) exhibit the best removal efficiency and is able to degrade norfloxacin completely within 10 min. Furthermore, it can maintain a 50% degradation capacity after three times use. The mechanism analysis indicates that the non-radical pathway dominates this degradation process by singlet oxygen, while the sulfate and hydroxyl radicals play auxiliary roles. The catalytic oxidation system constructed in this study has high degradation efficiency of norfloxacin, high applicability to environmental pH, and low risk of secondary contamination. It is expected to be used for the remediation of norfloxacin-type contamination in the soil.https://www.swdzgcdz.com/en/article/doi/10.16030/j.cnki.issn.1000-3665.202311017iron-based biocharpersulfateantibioticspyrolysis temperaturebiomass particle sizenon-radical pathway
spellingShingle Congcong WANG
Jiawei CHEN
Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biochar
Shuiwen dizhi gongcheng dizhi
iron-based biochar
persulfate
antibiotics
pyrolysis temperature
biomass particle size
non-radical pathway
title Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biochar
title_full Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biochar
title_fullStr Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biochar
title_full_unstemmed Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biochar
title_short Non-radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron-based biochar
title_sort non radical pathway dominated highly efficient degradation of norfloxacin using persulfate activation with iron based biochar
topic iron-based biochar
persulfate
antibiotics
pyrolysis temperature
biomass particle size
non-radical pathway
url https://www.swdzgcdz.com/en/article/doi/10.16030/j.cnki.issn.1000-3665.202311017
work_keys_str_mv AT congcongwang nonradicalpathwaydominatedhighlyefficientdegradationofnorfloxacinusingpersulfateactivationwithironbasedbiochar
AT jiaweichen nonradicalpathwaydominatedhighlyefficientdegradationofnorfloxacinusingpersulfateactivationwithironbasedbiochar