Cargando…

A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms

In this study, Fe–Co-modified biochar (FMBC) loaded with iron (Fe) and cobalt (Co) bimetals after NaOH activation was prepared by pyrolysis using forestry waste cedar bark as a raw material to study its properties and the adsorption of ofloxacin (OFX). The surface structure and chemical properties w...

Descripción completa

Detalles Bibliográficos
Autores principales: Hao, Jiajie, Wu, Lieshan, Lu, Xiaowei, Zeng, Yalin, Jia, Bing, Luo, Tingting, He, Shixing, Liang, Liuling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9634719/
https://www.ncbi.nlm.nih.gov/pubmed/36380923
http://dx.doi.org/10.1039/d2ra05334a
_version_ 1784824557125763072
author Hao, Jiajie
Wu, Lieshan
Lu, Xiaowei
Zeng, Yalin
Jia, Bing
Luo, Tingting
He, Shixing
Liang, Liuling
author_facet Hao, Jiajie
Wu, Lieshan
Lu, Xiaowei
Zeng, Yalin
Jia, Bing
Luo, Tingting
He, Shixing
Liang, Liuling
author_sort Hao, Jiajie
collection PubMed
description In this study, Fe–Co-modified biochar (FMBC) loaded with iron (Fe) and cobalt (Co) bimetals after NaOH activation was prepared by pyrolysis using forestry waste cedar bark as a raw material to study its properties and the adsorption of ofloxacin (OFX). The surface structure and chemical properties were analyzed by BET, SEM-EDS, XRD, XPS, and FTIR characterization, and the results showed that the FMBC possessed a larger specific surface area and abundant surface functional groups. FMBC conformed to pseudo-second-order kinetic and Langmuir isotherm models, indicating that the OFX adsorption process on FMBC was a monolayer adsorption process and controlled by chemisorption. The saturation adsorption capacity of FMBC was 10 times higher than that of cedar bark biochar (BC). In addition, the effects of initial pH and coexisting ions on the adsorption process were investigated, and FMBC showed good adsorption, with the best adsorption capacity at pH = 7. Multiple adsorption mechanisms, including physical and chemical interactions, were involved in the adsorption of OFX by FMBC. TG, metal leaching, different water sources, and VSM tests showed that FMBC had good stability and was easily separated from water. Finally, the reusability performance of FMBC was investigated by various methods, and after five cycles it could still reach 75.78–89.31% of the adsorption capacity before recycling. Therefore, the FMBC synthesized in this study is a promising new adsorbent.
format Online
Article
Text
id pubmed-9634719
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-96347192022-11-14 A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms Hao, Jiajie Wu, Lieshan Lu, Xiaowei Zeng, Yalin Jia, Bing Luo, Tingting He, Shixing Liang, Liuling RSC Adv Chemistry In this study, Fe–Co-modified biochar (FMBC) loaded with iron (Fe) and cobalt (Co) bimetals after NaOH activation was prepared by pyrolysis using forestry waste cedar bark as a raw material to study its properties and the adsorption of ofloxacin (OFX). The surface structure and chemical properties were analyzed by BET, SEM-EDS, XRD, XPS, and FTIR characterization, and the results showed that the FMBC possessed a larger specific surface area and abundant surface functional groups. FMBC conformed to pseudo-second-order kinetic and Langmuir isotherm models, indicating that the OFX adsorption process on FMBC was a monolayer adsorption process and controlled by chemisorption. The saturation adsorption capacity of FMBC was 10 times higher than that of cedar bark biochar (BC). In addition, the effects of initial pH and coexisting ions on the adsorption process were investigated, and FMBC showed good adsorption, with the best adsorption capacity at pH = 7. Multiple adsorption mechanisms, including physical and chemical interactions, were involved in the adsorption of OFX by FMBC. TG, metal leaching, different water sources, and VSM tests showed that FMBC had good stability and was easily separated from water. Finally, the reusability performance of FMBC was investigated by various methods, and after five cycles it could still reach 75.78–89.31% of the adsorption capacity before recycling. Therefore, the FMBC synthesized in this study is a promising new adsorbent. The Royal Society of Chemistry 2022-11-04 /pmc/articles/PMC9634719/ /pubmed/36380923 http://dx.doi.org/10.1039/d2ra05334a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hao, Jiajie
Wu, Lieshan
Lu, Xiaowei
Zeng, Yalin
Jia, Bing
Luo, Tingting
He, Shixing
Liang, Liuling
A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms
title A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms
title_full A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms
title_fullStr A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms
title_full_unstemmed A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms
title_short A stable Fe/Co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms
title_sort stable fe/co bimetallic modified biochar for ofloxacin removal from water: adsorption behavior and mechanisms
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9634719/
https://www.ncbi.nlm.nih.gov/pubmed/36380923
http://dx.doi.org/10.1039/d2ra05334a
work_keys_str_mv AT haojiajie astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT wulieshan astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT luxiaowei astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT zengyalin astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT jiabing astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT luotingting astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT heshixing astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT liangliuling astablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT haojiajie stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT wulieshan stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT luxiaowei stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT zengyalin stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT jiabing stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT luotingting stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT heshixing stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms
AT liangliuling stablefecobimetallicmodifiedbiocharforofloxacinremovalfromwateradsorptionbehaviorandmechanisms