Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocomposite
This study deals with the removal of Mn(II) from aqueous solutions by Mg-Zn-Al LDH/montmorillonite nanocomposite. LDH adsorbent was prepared by co-precipitation method and the composite was prepared by physical mixing of LDH and MMT using high-shear action. The data revealed that the maximum adsorpt...
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doaj-254cd11d1a634e988b3867d2b56375ef2020-11-24T21:56:35ZengElsevierEgyptian Journal of Petroleum1110-06212018-12-0127412151220Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocompositeA.A. Bakr0N.A. Sayed1T.M. Salama2I.O. Ali3R.R. Abdel Gayed4N.A. Negm5Egyptian Petroleum Research Institute (EPRI), Nasr City, Cairo 11727, EgyptEgyptian Petroleum Research Institute (EPRI), Nasr City, Cairo 11727, EgyptAl-Azhar University, Department of Chemistry, Nasr City, Cairo, EgyptAl-Azhar University, Department of Chemistry, Nasr City, Cairo, EgyptGiza North Power Station, Ministry of Electricity and Energy, Giza, EgyptEgyptian Petroleum Research Institute (EPRI), Nasr City, Cairo 11727, Egypt; Corresponding author.This study deals with the removal of Mn(II) from aqueous solutions by Mg-Zn-Al LDH/montmorillonite nanocomposite. LDH adsorbent was prepared by co-precipitation method and the composite was prepared by physical mixing of LDH and MMT using high-shear action. The data revealed that the maximum adsorption efficiency were 24.5, 26.4 and 28.9 mg/g at adsorbent mass of 0.25 g/L, pH of 6.0, initial Mn(II) concentration of 80 mg/L, stirring rate of 160 rpm, contact time of 75 min and different temperatures of 298, 308 and 318 K, respectively. Langmuir and Freundlich models were used to optimize the adsorption process and pseudo-first order and pseudo-second order models were used to evaluate the adsorption kinetics of Mn(II) ions onto Mg-Zn-Al (LDH)/MMT nanocomposite. The data indicated that Langmuir model fits the experimental data better than Freundlich model and pseudo-second order model is sufficient to depict the kinetics of Mn(II) onto Mg-Zn-Al (LDH)/MMT composite. Also, the data obtained from thermodynamics study; Gibbs free energy (ΔG°), Enthalpy change (ΔH°), and Entropy change (ΔS°) revealed that the adsorption process is spontaneous, endothermic and randomness at the solid-solution interface during the process of adsorption. Keywords: Mn(II) removal, Kinetics and thermodynamics, Mg-Zn-Al LDH, Montmorillonite, Nanocompositehttp://www.sciencedirect.com/science/article/pii/S1110062118300473 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
A.A. Bakr N.A. Sayed T.M. Salama I.O. Ali R.R. Abdel Gayed N.A. Negm |
spellingShingle |
A.A. Bakr N.A. Sayed T.M. Salama I.O. Ali R.R. Abdel Gayed N.A. Negm Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocomposite Egyptian Journal of Petroleum |
author_facet |
A.A. Bakr N.A. Sayed T.M. Salama I.O. Ali R.R. Abdel Gayed N.A. Negm |
author_sort |
A.A. Bakr |
title |
Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocomposite |
title_short |
Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocomposite |
title_full |
Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocomposite |
title_fullStr |
Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocomposite |
title_full_unstemmed |
Kinetics and thermodynamics of Mn(II) removal from aqueous solutions onto Mg-Zn-Al LDH/montmorillonite nanocomposite |
title_sort |
kinetics and thermodynamics of mn(ii) removal from aqueous solutions onto mg-zn-al ldh/montmorillonite nanocomposite |
publisher |
Elsevier |
series |
Egyptian Journal of Petroleum |
issn |
1110-0621 |
publishDate |
2018-12-01 |
description |
This study deals with the removal of Mn(II) from aqueous solutions by Mg-Zn-Al LDH/montmorillonite nanocomposite. LDH adsorbent was prepared by co-precipitation method and the composite was prepared by physical mixing of LDH and MMT using high-shear action. The data revealed that the maximum adsorption efficiency were 24.5, 26.4 and 28.9 mg/g at adsorbent mass of 0.25 g/L, pH of 6.0, initial Mn(II) concentration of 80 mg/L, stirring rate of 160 rpm, contact time of 75 min and different temperatures of 298, 308 and 318 K, respectively. Langmuir and Freundlich models were used to optimize the adsorption process and pseudo-first order and pseudo-second order models were used to evaluate the adsorption kinetics of Mn(II) ions onto Mg-Zn-Al (LDH)/MMT nanocomposite. The data indicated that Langmuir model fits the experimental data better than Freundlich model and pseudo-second order model is sufficient to depict the kinetics of Mn(II) onto Mg-Zn-Al (LDH)/MMT composite. Also, the data obtained from thermodynamics study; Gibbs free energy (ΔG°), Enthalpy change (ΔH°), and Entropy change (ΔS°) revealed that the adsorption process is spontaneous, endothermic and randomness at the solid-solution interface during the process of adsorption. Keywords: Mn(II) removal, Kinetics and thermodynamics, Mg-Zn-Al LDH, Montmorillonite, Nanocomposite |
url |
http://www.sciencedirect.com/science/article/pii/S1110062118300473 |
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