Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye

In this study, carrot juice pulp (CJP) and pomegranate peel (PP) biomass wastes were used as alternative precursors for producing high surface area activated carbon (referred to as CJPPPAC) using microwave radiation assisted with ZnCl2 activation. The CJPPPAC has a large surface area (SA = 1202.2 m2...

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Published in:Diamond and Related Materials
Main Author: Suhaimi A.; Abdulhameed A.S.; Jawad A.H.; Yousef T.A.; Al Duaij O.K.; ALOthman Z.A.; Wilson L.D.
Format: Article
Language:English
Published: Elsevier Ltd 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140141943&doi=10.1016%2fj.diamond.2022.109456&partnerID=40&md5=4a1e8a992a8396719224d3e598bf4ef6
id 2-s2.0-85140141943
spelling 2-s2.0-85140141943
Suhaimi A.; Abdulhameed A.S.; Jawad A.H.; Yousef T.A.; Al Duaij O.K.; ALOthman Z.A.; Wilson L.D.
Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
2022
Diamond and Related Materials
130

10.1016/j.diamond.2022.109456
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140141943&doi=10.1016%2fj.diamond.2022.109456&partnerID=40&md5=4a1e8a992a8396719224d3e598bf4ef6
In this study, carrot juice pulp (CJP) and pomegranate peel (PP) biomass wastes were used as alternative precursors for producing high surface area activated carbon (referred to as CJPPPAC) using microwave radiation assisted with ZnCl2 activation. The CJPPPAC has a large surface area (SA = 1202.2 m2/g), according to the Brunauer-Emmett-Teller analysis, and a mesoporous structure (average pore diameter of 3.0 nm). The adsorption characteristics of CJPPPAC were studied for the removal of a model of cationic dye (crystal violet; CV). The numerical desirability function of the Box-Behnken design (BBD) was used to optimize important adsorption variables (A: CJPPPAC dose (0.02–0.08 g); B: pH (4–10); C: time (2–6); and D: initial CV concentration (20–80 mg/L). The dye adsorption kinetics profile followed a pseudo-second-order (PSO) model, whilst the equilibrium adsorption was described by the Freundlich model. The maximum adsorption capacity (qmax) of CJPPPAC for the CV dye was identified to be 211.8 mg/g. The adsorption mechanism of CV dye onto the CJPPPAC surface occurs by a variety of mechanisms including electrostatic forces, pore diffusion, π-π stacking, and H-bonding. This work illustrates the applicability of CJP and PP as biomass precursors for the efficient production of CJPPPAC and its utility for wastewater treatment. © 2022 Elsevier B.V.
Elsevier Ltd
9259635
English
Article

author Suhaimi A.; Abdulhameed A.S.; Jawad A.H.; Yousef T.A.; Al Duaij O.K.; ALOthman Z.A.; Wilson L.D.
spellingShingle Suhaimi A.; Abdulhameed A.S.; Jawad A.H.; Yousef T.A.; Al Duaij O.K.; ALOthman Z.A.; Wilson L.D.
Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
author_facet Suhaimi A.; Abdulhameed A.S.; Jawad A.H.; Yousef T.A.; Al Duaij O.K.; ALOthman Z.A.; Wilson L.D.
author_sort Suhaimi A.; Abdulhameed A.S.; Jawad A.H.; Yousef T.A.; Al Duaij O.K.; ALOthman Z.A.; Wilson L.D.
title Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
title_short Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
title_full Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
title_fullStr Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
title_full_unstemmed Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
title_sort Production of large surface area activated carbon from a mixture of carrot juice pulp and pomegranate peel using microwave radiation-assisted ZnCl2 activation: An optimized removal process and tailored adsorption mechanism of crystal violet dye
publishDate 2022
container_title Diamond and Related Materials
container_volume 130
container_issue
doi_str_mv 10.1016/j.diamond.2022.109456
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140141943&doi=10.1016%2fj.diamond.2022.109456&partnerID=40&md5=4a1e8a992a8396719224d3e598bf4ef6
description In this study, carrot juice pulp (CJP) and pomegranate peel (PP) biomass wastes were used as alternative precursors for producing high surface area activated carbon (referred to as CJPPPAC) using microwave radiation assisted with ZnCl2 activation. The CJPPPAC has a large surface area (SA = 1202.2 m2/g), according to the Brunauer-Emmett-Teller analysis, and a mesoporous structure (average pore diameter of 3.0 nm). The adsorption characteristics of CJPPPAC were studied for the removal of a model of cationic dye (crystal violet; CV). The numerical desirability function of the Box-Behnken design (BBD) was used to optimize important adsorption variables (A: CJPPPAC dose (0.02–0.08 g); B: pH (4–10); C: time (2–6); and D: initial CV concentration (20–80 mg/L). The dye adsorption kinetics profile followed a pseudo-second-order (PSO) model, whilst the equilibrium adsorption was described by the Freundlich model. The maximum adsorption capacity (qmax) of CJPPPAC for the CV dye was identified to be 211.8 mg/g. The adsorption mechanism of CV dye onto the CJPPPAC surface occurs by a variety of mechanisms including electrostatic forces, pore diffusion, π-π stacking, and H-bonding. This work illustrates the applicability of CJP and PP as biomass precursors for the efficient production of CJPPPAC and its utility for wastewater treatment. © 2022 Elsevier B.V.
publisher Elsevier Ltd
issn 9259635
language English
format Article
accesstype
record_format scopus
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