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Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals

High concentrations of graphene oxide (GO), a nanoparticle substance with rapid manufacturing development, have the ability to penetrate the soil surface down to the mineral-rich subsurface layers. The destiny and distribution of such an unusual sort of nanomaterial in the environment must therefore...

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Autores principales: Ibrahim, Marwa I. M., Awad, Elsayed A. M., Dahdouh, Salah M. M., El-Etr, Wafaa M. T., Marey, Samy A., Hatamleh, Ashraf Atef, Mahmood, Mohsin, Elrys, Ahmed S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458753/
https://www.ncbi.nlm.nih.gov/pubmed/37630414
http://dx.doi.org/10.3390/molecules28166162
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author Ibrahim, Marwa I. M.
Awad, Elsayed A. M.
Dahdouh, Salah M. M.
El-Etr, Wafaa M. T.
Marey, Samy A.
Hatamleh, Ashraf Atef
Mahmood, Mohsin
Elrys, Ahmed S.
author_facet Ibrahim, Marwa I. M.
Awad, Elsayed A. M.
Dahdouh, Salah M. M.
El-Etr, Wafaa M. T.
Marey, Samy A.
Hatamleh, Ashraf Atef
Mahmood, Mohsin
Elrys, Ahmed S.
author_sort Ibrahim, Marwa I. M.
collection PubMed
description High concentrations of graphene oxide (GO), a nanoparticle substance with rapid manufacturing development, have the ability to penetrate the soil surface down to the mineral-rich subsurface layers. The destiny and distribution of such an unusual sort of nanomaterial in the environment must therefore be fully understood. However, the way the chemistry of solutions impacts GO nanoparticle adsorption on clay minerals is still unclear. Here, the adsorption of GO on clay minerals (e.g., bentonite and kaolinite) was tested under various chemical conditions (e.g., GO concentration, soil pH, and cation valence). Non-linear Langmuir and Freundlich models have been applied to describe the adsorption isotherm by comparing the amount of adsorbed GO nanoparticle to the concentration at the equilibrium of the solution. Our results showed fondness for GO in bentonite and kaolinite under similar conditions, but the GO nanoparticle adsorption with bentonite was superior to kaolinite, mainly due to its higher surface area and surface charge. We also found that increasing the ionic strength and decreasing the pH increased the adsorption of GO nanoparticles to bentonite and kaolinite, mainly due to the interaction between these clay minerals and GO nanoparticles’ surface oxygen functional groups. Experimental data fit well to the non-linear pseudo-second-order kinetic model of Freundlich. The model of the Freundlich isotherm was more fitting at a lower pH and higher ionic strength in the bentonite soil while the lowest R(2) value of the Freundlich model was recorded at a higher pH and lower ionic strength in the kaolinite soil. These results improve our understanding of GO behavior in soils by revealing environmental factors influencing GO nanoparticle movement and transmission towards groundwater.
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spelling pubmed-104587532023-08-27 Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals Ibrahim, Marwa I. M. Awad, Elsayed A. M. Dahdouh, Salah M. M. El-Etr, Wafaa M. T. Marey, Samy A. Hatamleh, Ashraf Atef Mahmood, Mohsin Elrys, Ahmed S. Molecules Article High concentrations of graphene oxide (GO), a nanoparticle substance with rapid manufacturing development, have the ability to penetrate the soil surface down to the mineral-rich subsurface layers. The destiny and distribution of such an unusual sort of nanomaterial in the environment must therefore be fully understood. However, the way the chemistry of solutions impacts GO nanoparticle adsorption on clay minerals is still unclear. Here, the adsorption of GO on clay minerals (e.g., bentonite and kaolinite) was tested under various chemical conditions (e.g., GO concentration, soil pH, and cation valence). Non-linear Langmuir and Freundlich models have been applied to describe the adsorption isotherm by comparing the amount of adsorbed GO nanoparticle to the concentration at the equilibrium of the solution. Our results showed fondness for GO in bentonite and kaolinite under similar conditions, but the GO nanoparticle adsorption with bentonite was superior to kaolinite, mainly due to its higher surface area and surface charge. We also found that increasing the ionic strength and decreasing the pH increased the adsorption of GO nanoparticles to bentonite and kaolinite, mainly due to the interaction between these clay minerals and GO nanoparticles’ surface oxygen functional groups. Experimental data fit well to the non-linear pseudo-second-order kinetic model of Freundlich. The model of the Freundlich isotherm was more fitting at a lower pH and higher ionic strength in the bentonite soil while the lowest R(2) value of the Freundlich model was recorded at a higher pH and lower ionic strength in the kaolinite soil. These results improve our understanding of GO behavior in soils by revealing environmental factors influencing GO nanoparticle movement and transmission towards groundwater. MDPI 2023-08-21 /pmc/articles/PMC10458753/ /pubmed/37630414 http://dx.doi.org/10.3390/molecules28166162 Text en © 2023 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
Ibrahim, Marwa I. M.
Awad, Elsayed A. M.
Dahdouh, Salah M. M.
El-Etr, Wafaa M. T.
Marey, Samy A.
Hatamleh, Ashraf Atef
Mahmood, Mohsin
Elrys, Ahmed S.
Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals
title Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals
title_full Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals
title_fullStr Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals
title_full_unstemmed Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals
title_short Exploring the Influence of Chemical Conditions on Nanoparticle Graphene Oxide Adsorption onto Clay Minerals
title_sort exploring the influence of chemical conditions on nanoparticle graphene oxide adsorption onto clay minerals
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458753/
https://www.ncbi.nlm.nih.gov/pubmed/37630414
http://dx.doi.org/10.3390/molecules28166162
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