Cargando…

On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere

A magnetite graphene oxide chitosan (MGOCS) composite microsphere was specifically prepared to efficiently adsorb As(III) from aqueous solutions. The characterization analysis of BET, XRD, VSM, TG, FTIR, XPS, and SEM-EDS was used to identify the characteristics and adsorption mechanism. Batch experi...

Descripción completa

Detalles Bibliográficos
Autores principales: Shan, Huimei, Liu, Yunquan, Zeng, Chunya, Peng, Sanxi, Zhan, Hongbin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9605594/
https://www.ncbi.nlm.nih.gov/pubmed/36295223
http://dx.doi.org/10.3390/ma15207156
_version_ 1784818106315571200
author Shan, Huimei
Liu, Yunquan
Zeng, Chunya
Peng, Sanxi
Zhan, Hongbin
author_facet Shan, Huimei
Liu, Yunquan
Zeng, Chunya
Peng, Sanxi
Zhan, Hongbin
author_sort Shan, Huimei
collection PubMed
description A magnetite graphene oxide chitosan (MGOCS) composite microsphere was specifically prepared to efficiently adsorb As(III) from aqueous solutions. The characterization analysis of BET, XRD, VSM, TG, FTIR, XPS, and SEM-EDS was used to identify the characteristics and adsorption mechanism. Batch experiments were carried out to determine the effects of the operational parameters and to evaluate the adsorption kinetic and equilibrium isotherm. The results show that the MGOCS composite microsphere with a particle size of about 1.5 mm can be prepared by a straightforward method of dropping FeCl(2), graphene oxide (GO), and chitosan (CS) mixtures into NaOH solutions and then drying the mixed solutions at 45 °C. The produced MGOCS had a strong thermal stability with a mass loss of <30% below 620 °C. The specific surface area and saturation magnetization of the produced MGOCS was 66.85 m(2)/g and 24.35 emu/g, respectively. The As(III) adsorption capacity (Q(e)) and removal efficiency (R(e)) was only 0.25 mg/g and 5.81% for GOCS, respectively. After 0.08 mol of Fe(3)O(4) modification, more than 53% of As(III) was efficiently removed by the formed MGOCS from aqueous solutions over a wide pH range of 5–10, and this was almost unaffected by temperature. The coexisting ion of PO(4)(3−) decreased Q(e) from 3.81 mg/g to 1.32 mg/g, but Mn(2+) increased Q(e) from 3.50 mg/g to 4.19 mg/g. The As(III) adsorption fitted the best to the pseudo-second-order kinetic model, and the maximum Q(e) was 20.72 mg/g as fitted by the Sips model. After four times regeneration, the R(e) value of As(III) slightly decreased from 76.2% to 73.8%, and no secondary pollution of Fe happened. Chemisorption is the major mechanism for As(III) adsorption, and As(III) was adsorbed on the surface and interior of the MGOCS, while the adsorbed As(III) was partially oxidized to As(V) accompanied by the reduction of Fe(III) to Fe(II). The produced As(V) was further adsorbed through ligand exchange (by forming Fe–O–As complexes) and electrostatic attraction, enhancing the As(III) removal. As an easily prepared and environmental-friendly composite, MGOCS not only greatly adsorbs As(III) but also effectively removes Cr(VI) and As(V) (R(e) > 60%) and other metals, showing a great advantage in the treatment of heavy metal-contaminated water.
format Online
Article
Text
id pubmed-9605594
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96055942022-10-27 On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere Shan, Huimei Liu, Yunquan Zeng, Chunya Peng, Sanxi Zhan, Hongbin Materials (Basel) Article A magnetite graphene oxide chitosan (MGOCS) composite microsphere was specifically prepared to efficiently adsorb As(III) from aqueous solutions. The characterization analysis of BET, XRD, VSM, TG, FTIR, XPS, and SEM-EDS was used to identify the characteristics and adsorption mechanism. Batch experiments were carried out to determine the effects of the operational parameters and to evaluate the adsorption kinetic and equilibrium isotherm. The results show that the MGOCS composite microsphere with a particle size of about 1.5 mm can be prepared by a straightforward method of dropping FeCl(2), graphene oxide (GO), and chitosan (CS) mixtures into NaOH solutions and then drying the mixed solutions at 45 °C. The produced MGOCS had a strong thermal stability with a mass loss of <30% below 620 °C. The specific surface area and saturation magnetization of the produced MGOCS was 66.85 m(2)/g and 24.35 emu/g, respectively. The As(III) adsorption capacity (Q(e)) and removal efficiency (R(e)) was only 0.25 mg/g and 5.81% for GOCS, respectively. After 0.08 mol of Fe(3)O(4) modification, more than 53% of As(III) was efficiently removed by the formed MGOCS from aqueous solutions over a wide pH range of 5–10, and this was almost unaffected by temperature. The coexisting ion of PO(4)(3−) decreased Q(e) from 3.81 mg/g to 1.32 mg/g, but Mn(2+) increased Q(e) from 3.50 mg/g to 4.19 mg/g. The As(III) adsorption fitted the best to the pseudo-second-order kinetic model, and the maximum Q(e) was 20.72 mg/g as fitted by the Sips model. After four times regeneration, the R(e) value of As(III) slightly decreased from 76.2% to 73.8%, and no secondary pollution of Fe happened. Chemisorption is the major mechanism for As(III) adsorption, and As(III) was adsorbed on the surface and interior of the MGOCS, while the adsorbed As(III) was partially oxidized to As(V) accompanied by the reduction of Fe(III) to Fe(II). The produced As(V) was further adsorbed through ligand exchange (by forming Fe–O–As complexes) and electrostatic attraction, enhancing the As(III) removal. As an easily prepared and environmental-friendly composite, MGOCS not only greatly adsorbs As(III) but also effectively removes Cr(VI) and As(V) (R(e) > 60%) and other metals, showing a great advantage in the treatment of heavy metal-contaminated water. MDPI 2022-10-14 /pmc/articles/PMC9605594/ /pubmed/36295223 http://dx.doi.org/10.3390/ma15207156 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shan, Huimei
Liu, Yunquan
Zeng, Chunya
Peng, Sanxi
Zhan, Hongbin
On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere
title On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere
title_full On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere
title_fullStr On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere
title_full_unstemmed On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere
title_short On As(III) Adsorption Characteristics of Innovative Magnetite Graphene Oxide Chitosan Microsphere
title_sort on as(iii) adsorption characteristics of innovative magnetite graphene oxide chitosan microsphere
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9605594/
https://www.ncbi.nlm.nih.gov/pubmed/36295223
http://dx.doi.org/10.3390/ma15207156
work_keys_str_mv AT shanhuimei onasiiiadsorptioncharacteristicsofinnovativemagnetitegrapheneoxidechitosanmicrosphere
AT liuyunquan onasiiiadsorptioncharacteristicsofinnovativemagnetitegrapheneoxidechitosanmicrosphere
AT zengchunya onasiiiadsorptioncharacteristicsofinnovativemagnetitegrapheneoxidechitosanmicrosphere
AT pengsanxi onasiiiadsorptioncharacteristicsofinnovativemagnetitegrapheneoxidechitosanmicrosphere
AT zhanhongbin onasiiiadsorptioncharacteristicsofinnovativemagnetitegrapheneoxidechitosanmicrosphere