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Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater

A new easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent was synthesized and then examined for removal of Fosfomycin antibiotic from synthetic pharmaceutical wastewater. The removal process of Fosfomycin was expressed through testing the total phosphorus (TP). A response surface...

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Autores principales: Abdelmigeed, Mai O., Sadek, Ahmed H., Ahmed, Tamer S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9044422/
https://www.ncbi.nlm.nih.gov/pubmed/35496345
http://dx.doi.org/10.1039/d2ra00936f
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author Abdelmigeed, Mai O.
Sadek, Ahmed H.
Ahmed, Tamer S.
author_facet Abdelmigeed, Mai O.
Sadek, Ahmed H.
Ahmed, Tamer S.
author_sort Abdelmigeed, Mai O.
collection PubMed
description A new easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent was synthesized and then examined for removal of Fosfomycin antibiotic from synthetic pharmaceutical wastewater. The removal process of Fosfomycin was expressed through testing the total phosphorus (TP). A response surface model (RSM) for Fosfomycin adsorption (as mg-P L(−1)) was used by carrying out the experiments using a central composite design. The adsorption model showed that Fosfomycin adsorption is directly proportional to core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent dosage and time, and indirectly to initial Fosfomycin concentration. The removal increased by decreasing the pH to 2. The Fosfomycin removal was done at room temperature under an orbital agitation speed of 250 rpm. The adsorption capacity of core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent reached around 1200 mg-P g(−1), which is significantly higher than other MOF adsorbents reported in the literature. The maximum Langmuir adsorption capacity of the adsorbent for Fosfomycin was 126.58 mg g(−1) and Fosfomycin adsorption behavior followed the Freundlich isotherm (R(2) = 0.9505) in the present study. The kinetics was best fitted by the pseudo-second-order model (R(2) = 0.9764). The RSM model was used for the adsorption process in different target modes.
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spelling pubmed-90444222022-04-28 Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater Abdelmigeed, Mai O. Sadek, Ahmed H. Ahmed, Tamer S. RSC Adv Chemistry A new easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent was synthesized and then examined for removal of Fosfomycin antibiotic from synthetic pharmaceutical wastewater. The removal process of Fosfomycin was expressed through testing the total phosphorus (TP). A response surface model (RSM) for Fosfomycin adsorption (as mg-P L(−1)) was used by carrying out the experiments using a central composite design. The adsorption model showed that Fosfomycin adsorption is directly proportional to core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent dosage and time, and indirectly to initial Fosfomycin concentration. The removal increased by decreasing the pH to 2. The Fosfomycin removal was done at room temperature under an orbital agitation speed of 250 rpm. The adsorption capacity of core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent reached around 1200 mg-P g(−1), which is significantly higher than other MOF adsorbents reported in the literature. The maximum Langmuir adsorption capacity of the adsorbent for Fosfomycin was 126.58 mg g(−1) and Fosfomycin adsorption behavior followed the Freundlich isotherm (R(2) = 0.9505) in the present study. The kinetics was best fitted by the pseudo-second-order model (R(2) = 0.9764). The RSM model was used for the adsorption process in different target modes. The Royal Society of Chemistry 2022-04-27 /pmc/articles/PMC9044422/ /pubmed/35496345 http://dx.doi.org/10.1039/d2ra00936f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Abdelmigeed, Mai O.
Sadek, Ahmed H.
Ahmed, Tamer S.
Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater
title Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater
title_full Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater
title_fullStr Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater
title_full_unstemmed Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater
title_short Novel easily separable core–shell Fe(3)O(4)/PVP/ZIF-8 nanostructure adsorbent: optimization of phosphorus removal from Fosfomycin pharmaceutical wastewater
title_sort novel easily separable core–shell fe(3)o(4)/pvp/zif-8 nanostructure adsorbent: optimization of phosphorus removal from fosfomycin pharmaceutical wastewater
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9044422/
https://www.ncbi.nlm.nih.gov/pubmed/35496345
http://dx.doi.org/10.1039/d2ra00936f
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