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Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation

[Image: see text] The aim of this study is to evaluate the efficacy of mesoporous silica nanospheres as an adsorbent to remove doxorubicin (DOX) from aqueous solution. The surface and structural properties of mesoporous silica nanospheres were investigated using BET, SEM, XRD, TEM, ζ potential, and...

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Autores principales: Althumayri, Khalid, Guesmi, Ahlem, Abd El-Fattah, Wesam, Khezami, Lotfi, Soltani, Taoufik, Hamadi, Naoufel Ben, Shahat, Ahmed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10116628/
https://www.ncbi.nlm.nih.gov/pubmed/37091426
http://dx.doi.org/10.1021/acsomega.3c00829
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author Althumayri, Khalid
Guesmi, Ahlem
Abd El-Fattah, Wesam
Khezami, Lotfi
Soltani, Taoufik
Hamadi, Naoufel Ben
Shahat, Ahmed
author_facet Althumayri, Khalid
Guesmi, Ahlem
Abd El-Fattah, Wesam
Khezami, Lotfi
Soltani, Taoufik
Hamadi, Naoufel Ben
Shahat, Ahmed
author_sort Althumayri, Khalid
collection PubMed
description [Image: see text] The aim of this study is to evaluate the efficacy of mesoporous silica nanospheres as an adsorbent to remove doxorubicin (DOX) from aqueous solution. The surface and structural properties of mesoporous silica nanospheres were investigated using BET, SEM, XRD, TEM, ζ potential, and point of zero charge analysis. To optimize DOX removal from aqueous solution, a Box–Behnken surface statistical design (BBD) with four times factors, four levels, and response surface modeling (RSM) was used. A high amount of adsorptivity from DOX (804.84 mg/g) was successfully done under the following conditions: mesoporous silica nanospheres dose = 0.02 g/25 mL; pH = 6; shaking speed = 200 rpm; and adsorption time = 100 min. The study of isotherms demonstrated how well the Langmuir equation and the experimental data matched. According to thermodynamic characteristics, the adsorption of DOX on mesoporous silica nanospheres was endothermic and spontaneous. The increase in solution temperature also aided in the removal of DOX. The kinetic study showed that the model suited the pseudo-second-order. The suggested adsorption method could recycle mesoporous silica nanospheres five times, with a modest reduction in its ability for adsorption. The most important feature of our adsorbent is that it can be recycled five times without losing its efficiency.
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spelling pubmed-101166282023-04-21 Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation Althumayri, Khalid Guesmi, Ahlem Abd El-Fattah, Wesam Khezami, Lotfi Soltani, Taoufik Hamadi, Naoufel Ben Shahat, Ahmed ACS Omega [Image: see text] The aim of this study is to evaluate the efficacy of mesoporous silica nanospheres as an adsorbent to remove doxorubicin (DOX) from aqueous solution. The surface and structural properties of mesoporous silica nanospheres were investigated using BET, SEM, XRD, TEM, ζ potential, and point of zero charge analysis. To optimize DOX removal from aqueous solution, a Box–Behnken surface statistical design (BBD) with four times factors, four levels, and response surface modeling (RSM) was used. A high amount of adsorptivity from DOX (804.84 mg/g) was successfully done under the following conditions: mesoporous silica nanospheres dose = 0.02 g/25 mL; pH = 6; shaking speed = 200 rpm; and adsorption time = 100 min. The study of isotherms demonstrated how well the Langmuir equation and the experimental data matched. According to thermodynamic characteristics, the adsorption of DOX on mesoporous silica nanospheres was endothermic and spontaneous. The increase in solution temperature also aided in the removal of DOX. The kinetic study showed that the model suited the pseudo-second-order. The suggested adsorption method could recycle mesoporous silica nanospheres five times, with a modest reduction in its ability for adsorption. The most important feature of our adsorbent is that it can be recycled five times without losing its efficiency. American Chemical Society 2023-04-07 /pmc/articles/PMC10116628/ /pubmed/37091426 http://dx.doi.org/10.1021/acsomega.3c00829 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Althumayri, Khalid
Guesmi, Ahlem
Abd El-Fattah, Wesam
Khezami, Lotfi
Soltani, Taoufik
Hamadi, Naoufel Ben
Shahat, Ahmed
Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation
title Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation
title_full Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation
title_fullStr Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation
title_full_unstemmed Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation
title_short Effective Adsorption and Removal of Doxorubicin from Aqueous Solutions Using Mesostructured Silica Nanospheres: Box–Behnken Design Optimization and Adsorption Performance Evaluation
title_sort effective adsorption and removal of doxorubicin from aqueous solutions using mesostructured silica nanospheres: box–behnken design optimization and adsorption performance evaluation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10116628/
https://www.ncbi.nlm.nih.gov/pubmed/37091426
http://dx.doi.org/10.1021/acsomega.3c00829
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