Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption

In this work, orange (Citrus sinensis) peels biochar (OPBC) were prepared by one-step H2SO4 activation for Methylene Blue (MB) adsorption from aqueous solution. The physicochemical properties of OPBC were characterized using instrumental analyses such as CHNS-O analyzer, Fourier Transform InfraRed (...

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Published in:Iranian Journal of Chemistry and Chemical Engineering
Main Author: Jawad A.H.; Al-Heetimi D.T.A.; Mastuli M.S.
Format: Article
Language:English
Published: Iranian Institute of Research and Development in Chemical Industries 2019
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85076574178&partnerID=40&md5=0eb3d94fe1be177a6cec8d31dd493f0e
id 2-s2.0-85076574178
spelling 2-s2.0-85076574178
Jawad A.H.; Al-Heetimi D.T.A.; Mastuli M.S.
Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
2019
Iranian Journal of Chemistry and Chemical Engineering
38
2

https://www.scopus.com/inward/record.uri?eid=2-s2.0-85076574178&partnerID=40&md5=0eb3d94fe1be177a6cec8d31dd493f0e
In this work, orange (Citrus sinensis) peels biochar (OPBC) were prepared by one-step H2SO4 activation for Methylene Blue (MB) adsorption from aqueous solution. The physicochemical properties of OPBC were characterized using instrumental analyses such as CHNS-O analyzer, Fourier Transform InfraRed (FT-IR) spectroscopy, Scanning Electron Microscopy (SEM), X-Ray Diffraction (XRD), and point-of-zero charge (pHpzc) analysis. Batch mode adsorption study was conducted by varying operational parameters such as adsorbent dosage (0.02 – 0.20 g), solution pH (3 – 11), initial MB concentrations (50 – 300 mg/L), and contact time (0 – 1440 min). The equilibrium data was found to better fit with the Langmuir isotherm model compare to Freundlich and Temkin models. The maximum adsorption capacity, qmax of OPBC for MB adsorption was 208.3 mg/g at 303 K. The kinetic study revealed that the present system obeyed Pseudo-Second-Order (PSO), model. The thermodynamic adsorption parameters such as standard enthalpy (ΔH°), standard entropy (ΔS°), and standard free energy (ΔG°) showed that the adsorption of MB onto OPBC surface endothermic in nature and spontaneous under the experimental conditions. All above-mentioned results indicate that the OPBC can feasibly employ for the elimination of MB from aqueous solution. © 2019, Iranian Institute of Research and Development in Chemical Industries. All rights reserved.
Iranian Institute of Research and Development in Chemical Industries
10219986
English
Article

author Jawad A.H.; Al-Heetimi D.T.A.; Mastuli M.S.
spellingShingle Jawad A.H.; Al-Heetimi D.T.A.; Mastuli M.S.
Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
author_facet Jawad A.H.; Al-Heetimi D.T.A.; Mastuli M.S.
author_sort Jawad A.H.; Al-Heetimi D.T.A.; Mastuli M.S.
title Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
title_short Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
title_full Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
title_fullStr Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
title_full_unstemmed Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
title_sort Biochar from orange (Citrus sinensis) peels by acid activation for methylene blue adsorption
publishDate 2019
container_title Iranian Journal of Chemistry and Chemical Engineering
container_volume 38
container_issue 2
doi_str_mv
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85076574178&partnerID=40&md5=0eb3d94fe1be177a6cec8d31dd493f0e
description In this work, orange (Citrus sinensis) peels biochar (OPBC) were prepared by one-step H2SO4 activation for Methylene Blue (MB) adsorption from aqueous solution. The physicochemical properties of OPBC were characterized using instrumental analyses such as CHNS-O analyzer, Fourier Transform InfraRed (FT-IR) spectroscopy, Scanning Electron Microscopy (SEM), X-Ray Diffraction (XRD), and point-of-zero charge (pHpzc) analysis. Batch mode adsorption study was conducted by varying operational parameters such as adsorbent dosage (0.02 – 0.20 g), solution pH (3 – 11), initial MB concentrations (50 – 300 mg/L), and contact time (0 – 1440 min). The equilibrium data was found to better fit with the Langmuir isotherm model compare to Freundlich and Temkin models. The maximum adsorption capacity, qmax of OPBC for MB adsorption was 208.3 mg/g at 303 K. The kinetic study revealed that the present system obeyed Pseudo-Second-Order (PSO), model. The thermodynamic adsorption parameters such as standard enthalpy (ΔH°), standard entropy (ΔS°), and standard free energy (ΔG°) showed that the adsorption of MB onto OPBC surface endothermic in nature and spontaneous under the experimental conditions. All above-mentioned results indicate that the OPBC can feasibly employ for the elimination of MB from aqueous solution. © 2019, Iranian Institute of Research and Development in Chemical Industries. All rights reserved.
publisher Iranian Institute of Research and Development in Chemical Industries
issn 10219986
language English
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