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Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling

Nanotechnology has received much attention in treating contaminated waters. In the present study, a facile co-precipitation method was employed to synthesize a novel iron and magnesium based binary metal oxide using a stoichiometrically fixed amount of FeNO(3)·9H(2)O and MgNO(3)·6H(2)O in a proporti...

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Autores principales: Khan, Saif Ullah, Zaidi, Rumman, Shaik, Feroz, Farooqi, Izharul Haq, Azam, Ameer, Abuhimd, Hatem, Ahmed, Faheem
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8004078/
https://www.ncbi.nlm.nih.gov/pubmed/33801160
http://dx.doi.org/10.3390/nano11030805
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author Khan, Saif Ullah
Zaidi, Rumman
Shaik, Feroz
Farooqi, Izharul Haq
Azam, Ameer
Abuhimd, Hatem
Ahmed, Faheem
author_facet Khan, Saif Ullah
Zaidi, Rumman
Shaik, Feroz
Farooqi, Izharul Haq
Azam, Ameer
Abuhimd, Hatem
Ahmed, Faheem
author_sort Khan, Saif Ullah
collection PubMed
description Nanotechnology has received much attention in treating contaminated waters. In the present study, a facile co-precipitation method was employed to synthesize a novel iron and magnesium based binary metal oxide using a stoichiometrically fixed amount of FeNO(3)·9H(2)O and MgNO(3)·6H(2)O in a proportion of molar concentration 1:1 and was later evaluated in removing As (III) from contaminated waters. Characterization of the prepared nanomaterial was done using X-ray diffraction (XRD), scanning electron microscopy (SEM), Energy Dispersive X-ray Analysis (EDAX) and ultraviolet–visible spectrophotometry (UV-VIS). Experimental studies on batch scale were carried out, examining the effect of varying initial concentrations of metal, adsorbent dosage, application time and initial pH on removal efficiency. Arsenic removal increased on increasing adsorbent dosage (0.1–1 g/L) but trend reversed on increasing initial arsenic concentration attaining q(max) of 263.20 mg/g. Adsorption was quite efficient in pH range 4–8. Freundlich fitted better for adsorption isotherm along with following Pseudo-2nd order kinetics. The reusability and effect of co-existing ions on arsenic adsorption, namely SO(4)(2−), CO(3)(2−) and PO(4)(3−) were also explored with reusability in 1st and 2nd cycles attained adsorptive removal up to 77% and 64% respectively. The prepared nano-adsorbent showed promising results in terms of high arsenic uptake (q(max) of 263.20 mg/g) along with facile and cost-effective synthesis. Thus, the co-precipitation technique used in this work is a simple one step procedure without any use of any precursor as compared to most of the other procedures used for synthesis.
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spelling pubmed-80040782021-03-28 Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling Khan, Saif Ullah Zaidi, Rumman Shaik, Feroz Farooqi, Izharul Haq Azam, Ameer Abuhimd, Hatem Ahmed, Faheem Nanomaterials (Basel) Article Nanotechnology has received much attention in treating contaminated waters. In the present study, a facile co-precipitation method was employed to synthesize a novel iron and magnesium based binary metal oxide using a stoichiometrically fixed amount of FeNO(3)·9H(2)O and MgNO(3)·6H(2)O in a proportion of molar concentration 1:1 and was later evaluated in removing As (III) from contaminated waters. Characterization of the prepared nanomaterial was done using X-ray diffraction (XRD), scanning electron microscopy (SEM), Energy Dispersive X-ray Analysis (EDAX) and ultraviolet–visible spectrophotometry (UV-VIS). Experimental studies on batch scale were carried out, examining the effect of varying initial concentrations of metal, adsorbent dosage, application time and initial pH on removal efficiency. Arsenic removal increased on increasing adsorbent dosage (0.1–1 g/L) but trend reversed on increasing initial arsenic concentration attaining q(max) of 263.20 mg/g. Adsorption was quite efficient in pH range 4–8. Freundlich fitted better for adsorption isotherm along with following Pseudo-2nd order kinetics. The reusability and effect of co-existing ions on arsenic adsorption, namely SO(4)(2−), CO(3)(2−) and PO(4)(3−) were also explored with reusability in 1st and 2nd cycles attained adsorptive removal up to 77% and 64% respectively. The prepared nano-adsorbent showed promising results in terms of high arsenic uptake (q(max) of 263.20 mg/g) along with facile and cost-effective synthesis. Thus, the co-precipitation technique used in this work is a simple one step procedure without any use of any precursor as compared to most of the other procedures used for synthesis. MDPI 2021-03-21 /pmc/articles/PMC8004078/ /pubmed/33801160 http://dx.doi.org/10.3390/nano11030805 Text en © 2021 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 (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Khan, Saif Ullah
Zaidi, Rumman
Shaik, Feroz
Farooqi, Izharul Haq
Azam, Ameer
Abuhimd, Hatem
Ahmed, Faheem
Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling
title Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling
title_full Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling
title_fullStr Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling
title_full_unstemmed Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling
title_short Evaluation of Fe-Mg Binary Oxide for As (III) Adsorption—Synthesis, Characterization and Kinetic Modelling
title_sort evaluation of fe-mg binary oxide for as (iii) adsorption—synthesis, characterization and kinetic modelling
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8004078/
https://www.ncbi.nlm.nih.gov/pubmed/33801160
http://dx.doi.org/10.3390/nano11030805
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