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Main Authors: Maity, Tarun, Kumar, Yogendra, Deb, Ashish Kumar Singha, Ali, Sk Musharaf, Maiti, Prabal K
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2501.13496
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author Maity, Tarun
Kumar, Yogendra
Deb, Ashish Kumar Singha
Ali, Sk Musharaf
Maiti, Prabal K
author_facet Maity, Tarun
Kumar, Yogendra
Deb, Ashish Kumar Singha
Ali, Sk Musharaf
Maiti, Prabal K
contents The increasing threat of uranium contamination to environmental and human health due to its radiotoxicity demands the development of novel and efficient adsorbents for remediation. In this study, we investigated the potential of poly(amidoamine) (PAMAM) dendrimers of generations 1 to 4 (G1 - G4) functionalized with graphene and carbon nanotubes (CNTs) as adsorbents for uranyl ion removal from aqueous solutions. By combining atomistic molecular dynamics (MD) simulations with experimental validation, we examined the influence of pH, uranyl ion concentration, and dendrimer generation on adsorption behavior. Our study revealed that uranyl ion adsorption is greater when PAMAM is grafted onto graphene/CNT than pristine PAMAM. However, PAMAM-grafted CNTs exhibit superior adsorption capacity at specific uranyl concentrations due to their curvature and abundant accessible binding sites. Higher-generation PAMAM dendrimers grafted onto graphene/CNTs exhibit greater adsorption capacity due to the increased availability of binding sites, which is consistent with experimental observations. The adsorption capability of uranyl ions in all four generations of the PAMAM dendrimer increased as the concentration of uranyl ions increased. Adsorption capacity increases with increasing uranyl ion concentration, and adsorption occurs on both PAMAM and graphene/CNT surfaces, with saturation observed at higher concentrations. This study provides insights into the adsorption mechanisms and highlights the potential of PAMAM-based nanocomposites for efficient uranyl ion extraction and environmental remediation.
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publishDate 2025
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spellingShingle Enhanced and Efficient Extraction of Uranyl Ions from Aqueous Waste through Graphene/CNT-PAMAM Nanocomposites
Maity, Tarun
Kumar, Yogendra
Deb, Ashish Kumar Singha
Ali, Sk Musharaf
Maiti, Prabal K
Soft Condensed Matter
Materials Science
The increasing threat of uranium contamination to environmental and human health due to its radiotoxicity demands the development of novel and efficient adsorbents for remediation. In this study, we investigated the potential of poly(amidoamine) (PAMAM) dendrimers of generations 1 to 4 (G1 - G4) functionalized with graphene and carbon nanotubes (CNTs) as adsorbents for uranyl ion removal from aqueous solutions. By combining atomistic molecular dynamics (MD) simulations with experimental validation, we examined the influence of pH, uranyl ion concentration, and dendrimer generation on adsorption behavior. Our study revealed that uranyl ion adsorption is greater when PAMAM is grafted onto graphene/CNT than pristine PAMAM. However, PAMAM-grafted CNTs exhibit superior adsorption capacity at specific uranyl concentrations due to their curvature and abundant accessible binding sites. Higher-generation PAMAM dendrimers grafted onto graphene/CNTs exhibit greater adsorption capacity due to the increased availability of binding sites, which is consistent with experimental observations. The adsorption capability of uranyl ions in all four generations of the PAMAM dendrimer increased as the concentration of uranyl ions increased. Adsorption capacity increases with increasing uranyl ion concentration, and adsorption occurs on both PAMAM and graphene/CNT surfaces, with saturation observed at higher concentrations. This study provides insights into the adsorption mechanisms and highlights the potential of PAMAM-based nanocomposites for efficient uranyl ion extraction and environmental remediation.
title Enhanced and Efficient Extraction of Uranyl Ions from Aqueous Waste through Graphene/CNT-PAMAM Nanocomposites
topic Soft Condensed Matter
Materials Science
url https://arxiv.org/abs/2501.13496