Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications
Iodide ions from radioactive iodine isotopes are common contaminants present in nuclear wastewater from nuclear power plants which are considered hazardous contaminants to be released in water sources even at low concentrations due to their association with metabolic disorders, therefore its removal...
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Elsevier
2024-02-01
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Online Access: | http://www.sciencedirect.com/science/article/pii/S2405844024007667 |
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author | Yassmin Handulle Ismail Kean Wang Maryam Al Shehhi Ali Al Hammadi |
author_facet | Yassmin Handulle Ismail Kean Wang Maryam Al Shehhi Ali Al Hammadi |
author_sort | Yassmin Handulle Ismail |
collection | DOAJ |
description | Iodide ions from radioactive iodine isotopes are common contaminants present in nuclear wastewater from nuclear power plants which are considered hazardous contaminants to be released in water sources even at low concentrations due to their association with metabolic disorders, therefore its removal from the nuclear wastewater effluents is necessary. Chitosan beads are natural and cost-efficient adsorbents that have been used for ion removal from wastewater. However, issues of poor selectivity persist in achieving high-efficiency iodide ion removal. In this study, ion-imprinted chitosan beads (IIC) have been synthesized using the phase-inversion method, IIC beads were modified by cross-linking with epichlorohydrin (IIC-EPI) and modified by cross-linking with epichlorohydrin and silicon dioxide nanoparticles (IIC–SiO2-EPI). Through 4 h of batch adsorption experiments, IIC beads achieved a maximum adsorption capacity (Qe) of 0.65 mmol g−1 and showed more preference for the iodide ions compared to the non-imprinted chitosan beads which achieved a maximum adsorption capacity of 0.27 mmol g−1 at pH 7. While the modified beads IIC-EPI and IIC-SiO2-EPI beads have boosted the adsorption capacities to 0.72 mmol g−1 and 0.91 mmol g−1. Scanning electron microscopic cross-sectional images have shown more pores and cavities than the surface images which agrees with the multilayer heterogeneous diffusion suggested by the Freundlich adsorption isotherm, that the experimental data has fitted. Adsorption kinetic data have fitted the Pseudo-second-order model as well as the Weber and Morris intraparticle model, which suggest an intraparticle pore diffusion adsorption mechanism, with the involvement of the physical electrostatic interactions with the cationic chitosan surface. |
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format | Article |
id | doaj.art-43f69b3494db456285871683c127fd25 |
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issn | 2405-8440 |
language | English |
last_indexed | 2024-03-08T00:11:59Z |
publishDate | 2024-02-01 |
publisher | Elsevier |
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series | Heliyon |
spelling | doaj.art-43f69b3494db456285871683c127fd252024-02-17T06:38:32ZengElsevierHeliyon2405-84402024-02-01103e24735Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applicationsYassmin Handulle Ismail0Kean Wang1Maryam Al Shehhi2Ali Al Hammadi3Chemical Engineering Department, Khalifa University of Science and Technology, P.O. Box 127788 Abu Dhabi, United Arab Emirates; Emirates Nuclear Technology Center (ENTC), Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab EmiratesSingapore Technology Institute, 138683, Singapore, SingaporeEmirates Nuclear Technology Center (ENTC), Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab Emirates; Civil Infrastructure and Environmental Engineering Department, Khalifa University of Science and Technology, P.O. Box 127788 Abu Dhabi, United Arab EmiratesChemical Engineering Department, Khalifa University of Science and Technology, P.O. Box 127788 Abu Dhabi, United Arab Emirates; Center for Catalysis and Separation (CeCas), Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab Emirates; Corresponding author. Chemical Engineering Department, Khalifa University of Science and Technology, P.O. Box 127788 Abu Dhabi, United Arab Emirates.Iodide ions from radioactive iodine isotopes are common contaminants present in nuclear wastewater from nuclear power plants which are considered hazardous contaminants to be released in water sources even at low concentrations due to their association with metabolic disorders, therefore its removal from the nuclear wastewater effluents is necessary. Chitosan beads are natural and cost-efficient adsorbents that have been used for ion removal from wastewater. However, issues of poor selectivity persist in achieving high-efficiency iodide ion removal. In this study, ion-imprinted chitosan beads (IIC) have been synthesized using the phase-inversion method, IIC beads were modified by cross-linking with epichlorohydrin (IIC-EPI) and modified by cross-linking with epichlorohydrin and silicon dioxide nanoparticles (IIC–SiO2-EPI). Through 4 h of batch adsorption experiments, IIC beads achieved a maximum adsorption capacity (Qe) of 0.65 mmol g−1 and showed more preference for the iodide ions compared to the non-imprinted chitosan beads which achieved a maximum adsorption capacity of 0.27 mmol g−1 at pH 7. While the modified beads IIC-EPI and IIC-SiO2-EPI beads have boosted the adsorption capacities to 0.72 mmol g−1 and 0.91 mmol g−1. Scanning electron microscopic cross-sectional images have shown more pores and cavities than the surface images which agrees with the multilayer heterogeneous diffusion suggested by the Freundlich adsorption isotherm, that the experimental data has fitted. Adsorption kinetic data have fitted the Pseudo-second-order model as well as the Weber and Morris intraparticle model, which suggest an intraparticle pore diffusion adsorption mechanism, with the involvement of the physical electrostatic interactions with the cationic chitosan surface.http://www.sciencedirect.com/science/article/pii/S2405844024007667ChitosanIon-imprintingIodide ionNuclear wastewaterBatch adsorption |
spellingShingle | Yassmin Handulle Ismail Kean Wang Maryam Al Shehhi Ali Al Hammadi Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications Heliyon Chitosan Ion-imprinting Iodide ion Nuclear wastewater Batch adsorption |
title | Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications |
title_full | Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications |
title_fullStr | Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications |
title_full_unstemmed | Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications |
title_short | Iodide ion-imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications |
title_sort | iodide ion imprinted chitosan beads for highly selective adsorption for nuclear wastewater treatment applications |
topic | Chitosan Ion-imprinting Iodide ion Nuclear wastewater Batch adsorption |
url | http://www.sciencedirect.com/science/article/pii/S2405844024007667 |
work_keys_str_mv | AT yassminhandulleismail iodideionimprintedchitosanbeadsforhighlyselectiveadsorptionfornuclearwastewatertreatmentapplications AT keanwang iodideionimprintedchitosanbeadsforhighlyselectiveadsorptionfornuclearwastewatertreatmentapplications AT maryamalshehhi iodideionimprintedchitosanbeadsforhighlyselectiveadsorptionfornuclearwastewatertreatmentapplications AT alialhammadi iodideionimprintedchitosanbeadsforhighlyselectiveadsorptionfornuclearwastewatertreatmentapplications |