Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon

In the wastewater treatment plant, activated carbon is a widely used adsorbent to remove heavy metals and organic pollutants, but it is very expensive. Therefore, adsorption by utilizing different types of agro-residues is one of the alternative materials to re...

Full description

Saved in:
Bibliographic Details
Main Author: Isokise, Ekemini Monday
Format: Thesis
Language:English
Published: 2019
Subjects:
Online Access:http://psasir.upm.edu.my/id/eprint/90781/1/ITMA%202020%201%20-%20IR.pdf
Tags: Add Tag
No Tags, Be the first to tag this record!
id my-upm-ir.90781
record_format uketd_dc
spelling my-upm-ir.907812021-09-24T00:16:50Z Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon 2019-07 Isokise, Ekemini Monday In the wastewater treatment plant, activated carbon is a widely used adsorbent to remove heavy metals and organic pollutants, but it is very expensive. Therefore, adsorption by utilizing different types of agro-residues is one of the alternative materials to remove various contaminant from solutions. Due to the high toxicity of Pb and Cu as trace metal pollutants in the environment, many studies have dedicated to suggest possible ways of eliminating these metals from the environment. This study focus on preparation of activated carbon from Palm Kernel Shell as economically and environmental friendly adsorbent for removal of Pb²⁺ and Cu²⁺ from aqueous solution. The activated carbon prepared were mainly mesoporous in nature with BET surface area and isoelectric point (IEP) ranged from 1004 to 1083 m²/g and 2.8 to 3.1, respectively. Effect of operating parameters such as activated carbon dosage, contact time, temperature, metal ion concentration and pH were investigated. Adsorption capacity was found to vary with initial concentration, adsorbent dose and pH. An increase in pH led to a significant increase in heavy metal removal suggesting the involvement of ion exchange mechanism. Adsorption kinetics, isotherms and thermodynamics parameters of the metal ions sorption process were also evaluated. Pseudo-second-order kinetics explained the adsorption process satisfactorily, which suggests chemisorption as the rate limiting step and mechanism for the removal of Cu²⁺ and Pb²⁺. The Langmuir isotherm model was most suitable for describing the adsorption process. The monolayer saturated adsorption capacities of AC-600 2:1(4) for Pb²⁺ and Cu²⁺ was 114.9 mg/g and 27.93 mg/g, respectively. Therefore, the prepared palm kernel shell based activated carbon found to be efficient in removing heavy metal. Palm products Palm-oil industry Copper - Absorption and adsorption 2019-07 Thesis http://psasir.upm.edu.my/id/eprint/90781/ http://psasir.upm.edu.my/id/eprint/90781/1/ITMA%202020%201%20-%20IR.pdf text en public masters Universiti Putra Malaysia Palm products Palm-oil industry Copper - Absorption and adsorption Abdullah, Abdul Halim
institution Universiti Putra Malaysia
collection PSAS Institutional Repository
language English
advisor Abdullah, Abdul Halim
topic Palm products
Palm-oil industry
Copper - Absorption and adsorption
spellingShingle Palm products
Palm-oil industry
Copper - Absorption and adsorption
Isokise, Ekemini Monday
Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon
description In the wastewater treatment plant, activated carbon is a widely used adsorbent to remove heavy metals and organic pollutants, but it is very expensive. Therefore, adsorption by utilizing different types of agro-residues is one of the alternative materials to remove various contaminant from solutions. Due to the high toxicity of Pb and Cu as trace metal pollutants in the environment, many studies have dedicated to suggest possible ways of eliminating these metals from the environment. This study focus on preparation of activated carbon from Palm Kernel Shell as economically and environmental friendly adsorbent for removal of Pb²⁺ and Cu²⁺ from aqueous solution. The activated carbon prepared were mainly mesoporous in nature with BET surface area and isoelectric point (IEP) ranged from 1004 to 1083 m²/g and 2.8 to 3.1, respectively. Effect of operating parameters such as activated carbon dosage, contact time, temperature, metal ion concentration and pH were investigated. Adsorption capacity was found to vary with initial concentration, adsorbent dose and pH. An increase in pH led to a significant increase in heavy metal removal suggesting the involvement of ion exchange mechanism. Adsorption kinetics, isotherms and thermodynamics parameters of the metal ions sorption process were also evaluated. Pseudo-second-order kinetics explained the adsorption process satisfactorily, which suggests chemisorption as the rate limiting step and mechanism for the removal of Cu²⁺ and Pb²⁺. The Langmuir isotherm model was most suitable for describing the adsorption process. The monolayer saturated adsorption capacities of AC-600 2:1(4) for Pb²⁺ and Cu²⁺ was 114.9 mg/g and 27.93 mg/g, respectively. Therefore, the prepared palm kernel shell based activated carbon found to be efficient in removing heavy metal.
format Thesis
qualification_level Master's degree
author Isokise, Ekemini Monday
author_facet Isokise, Ekemini Monday
author_sort Isokise, Ekemini Monday
title Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon
title_short Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon
title_full Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon
title_fullStr Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon
title_full_unstemmed Adsorption of copper(II) and lead(II) ions by palm kernel shell-derived activated carbon
title_sort adsorption of copper(ii) and lead(ii) ions by palm kernel shell-derived activated carbon
granting_institution Universiti Putra Malaysia
publishDate 2019
url http://psasir.upm.edu.my/id/eprint/90781/1/ITMA%202020%201%20-%20IR.pdf
_version_ 1747813658376798208