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Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water

This work reports the synthesis of new layered double hydroxide (LDH) composites using sewage-based ZnCl(2)-activated carbon (AC) intercalated with MgFe (AC-MgFe-LDH) and an evaluation of their adsorptive performance for phenol removal from water. The effect of the AC loading on the final properties...

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Autores principales: Mu’azu, Nuhu Dalhat, Zubair, Mukarram, Jarrah, Nabeel, Alagha, Omar, Al-Harthi, Mamdouh A., Essa, Mohammed H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7084656/
https://www.ncbi.nlm.nih.gov/pubmed/32106562
http://dx.doi.org/10.3390/ijms21051563
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author Mu’azu, Nuhu Dalhat
Zubair, Mukarram
Jarrah, Nabeel
Alagha, Omar
Al-Harthi, Mamdouh A.
Essa, Mohammed H.
author_facet Mu’azu, Nuhu Dalhat
Zubair, Mukarram
Jarrah, Nabeel
Alagha, Omar
Al-Harthi, Mamdouh A.
Essa, Mohammed H.
author_sort Mu’azu, Nuhu Dalhat
collection PubMed
description This work reports the synthesis of new layered double hydroxide (LDH) composites using sewage-based ZnCl(2)-activated carbon (AC) intercalated with MgFe (AC-MgFe-LDH) and an evaluation of their adsorptive performance for phenol removal from water. The effect of the AC loading on the final properties of synthesized composites was investigated via various characterization techniques. The results showed efficient decoration at 0.1–0.25 g AC loading within the layers of AC–MgFe composites LDH, which was reflected in the higher surface area (233.75 m(2)/g) and surface functionalities (OH, NO(3), C-O-C, and MMO) yielding a significant improvement of the phenol removal efficiency. However, at higher contents, AC loading led to the breakage of the LDH structure and agglomeration, as indicated by the deterioration in the textural and structural properties. The isotherm and kinetic data were well fitted by the Langmuir and pseudo-second-order model, respectively, with a maximum obtained monolayer adsorption capacity of 138.69 mg/g. The thermodynamics results demonstrated that phenol adsorption is an endothermic process. The sorption mechanism of phenol molecules on the AC–MgFe composite was governed by chemical bonding with OH, C=O, and MMO groups and pore diffusion via π–π interactions. Superior phenol removal with excellent recyclability up to five cycles of the new AC–MgFe composite suggested its use as a potential adsorbent for effective phenol removal from water and wastewater streams.
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spelling pubmed-70846562020-03-24 Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water Mu’azu, Nuhu Dalhat Zubair, Mukarram Jarrah, Nabeel Alagha, Omar Al-Harthi, Mamdouh A. Essa, Mohammed H. Int J Mol Sci Article This work reports the synthesis of new layered double hydroxide (LDH) composites using sewage-based ZnCl(2)-activated carbon (AC) intercalated with MgFe (AC-MgFe-LDH) and an evaluation of their adsorptive performance for phenol removal from water. The effect of the AC loading on the final properties of synthesized composites was investigated via various characterization techniques. The results showed efficient decoration at 0.1–0.25 g AC loading within the layers of AC–MgFe composites LDH, which was reflected in the higher surface area (233.75 m(2)/g) and surface functionalities (OH, NO(3), C-O-C, and MMO) yielding a significant improvement of the phenol removal efficiency. However, at higher contents, AC loading led to the breakage of the LDH structure and agglomeration, as indicated by the deterioration in the textural and structural properties. The isotherm and kinetic data were well fitted by the Langmuir and pseudo-second-order model, respectively, with a maximum obtained monolayer adsorption capacity of 138.69 mg/g. The thermodynamics results demonstrated that phenol adsorption is an endothermic process. The sorption mechanism of phenol molecules on the AC–MgFe composite was governed by chemical bonding with OH, C=O, and MMO groups and pore diffusion via π–π interactions. Superior phenol removal with excellent recyclability up to five cycles of the new AC–MgFe composite suggested its use as a potential adsorbent for effective phenol removal from water and wastewater streams. MDPI 2020-02-25 /pmc/articles/PMC7084656/ /pubmed/32106562 http://dx.doi.org/10.3390/ijms21051563 Text en © 2020 by the authors. 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/).
spellingShingle Article
Mu’azu, Nuhu Dalhat
Zubair, Mukarram
Jarrah, Nabeel
Alagha, Omar
Al-Harthi, Mamdouh A.
Essa, Mohammed H.
Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water
title Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water
title_full Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water
title_fullStr Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water
title_full_unstemmed Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water
title_short Sewage Sludge ZnCl(2)-Activated Carbon Intercalated MgFe–LDH Nanocomposites: Insight of the Sorption Mechanism of Improved Removal of Phenol from Water
title_sort sewage sludge zncl(2)-activated carbon intercalated mgfe–ldh nanocomposites: insight of the sorption mechanism of improved removal of phenol from water
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7084656/
https://www.ncbi.nlm.nih.gov/pubmed/32106562
http://dx.doi.org/10.3390/ijms21051563
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