Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design

This paper focuses on the development of an effective methodology to obtain the optimum removal conditions assisted by ultrasonics to maximize the simultaneous removal of dyes, eosin Y (EY), methylene blue (MB) and phenol red (PR), by Cu(OH)2-NP-AC in aqueous solution using response surface methodol...

Full description

Bibliographic Details
Main Authors: Dashamiri, S., Ghaedi, M., Asfaram, A., Zare, F., Wang, Shaobin
Format: Journal Article
Published: Elsevier 2017
Online Access:http://hdl.handle.net/20.500.11937/8089
_version_ 1848745554192891904
author Dashamiri, S.
Ghaedi, M.
Asfaram, A.
Zare, F.
Wang, Shaobin
author_facet Dashamiri, S.
Ghaedi, M.
Asfaram, A.
Zare, F.
Wang, Shaobin
author_sort Dashamiri, S.
building Curtin Institutional Repository
collection Online Access
description This paper focuses on the development of an effective methodology to obtain the optimum removal conditions assisted by ultrasonics to maximize the simultaneous removal of dyes, eosin Y (EY), methylene blue (MB) and phenol red (PR), by Cu(OH)2-NP-AC in aqueous solution using response surface methodology (RSM). The effects of variables such as pH, initial dyes concentrations (mg L−1), and amount of sorbent (mg) and sonication time (min) on the dyes removal were studied. A central composite design (CCD) was applied to evaluate the interactive effects of adsorption variables. A good correlation (with R2 > 0.940) between the statistical model and experiment was found for dyes removal from aqueous wastewater using the adsorbent. The optimum removal (99.20% ± 1.48) was thus obtained at pH 6.0, ultrasound time 2.5 min, adsorbent mass 20 mg and initial dye concentration at 5 mg L−1 for MB and EY and 12.5 mg L−1 for PR. The maximum adsorption capacity (Qmax) was calculated from the Langmuir isotherm as 32.9, 26.4 and 38.5 mg g−1 for the MB, EY and PR, respectively for the 0.015 g of sorbent. The adsorption kinetic data of the dyes were analyzed and was found fitting well in a pseudo-second-order equation. Adsorption isotherms and separation factors showed that the adsorbent displays a high selectivity toward one dye in a three-component system with an affinity order of PR > MB > EY. On the other hand, acoustic waves emitted by the cavitation bubbles render a direct effect on the process. This is attributed to the discrete nature and high pressure amplitude of the waves, which creates excessively high convection in the medium, causing adsorption of the pollutants. The chemical nature of the pollutants influences the enhancement effect of ultrasound.
first_indexed 2025-11-14T06:19:12Z
format Journal Article
id curtin-20.500.11937-8089
institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T06:19:12Z
publishDate 2017
publisher Elsevier
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-80892017-09-13T14:38:33Z Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design Dashamiri, S. Ghaedi, M. Asfaram, A. Zare, F. Wang, Shaobin This paper focuses on the development of an effective methodology to obtain the optimum removal conditions assisted by ultrasonics to maximize the simultaneous removal of dyes, eosin Y (EY), methylene blue (MB) and phenol red (PR), by Cu(OH)2-NP-AC in aqueous solution using response surface methodology (RSM). The effects of variables such as pH, initial dyes concentrations (mg L−1), and amount of sorbent (mg) and sonication time (min) on the dyes removal were studied. A central composite design (CCD) was applied to evaluate the interactive effects of adsorption variables. A good correlation (with R2 > 0.940) between the statistical model and experiment was found for dyes removal from aqueous wastewater using the adsorbent. The optimum removal (99.20% ± 1.48) was thus obtained at pH 6.0, ultrasound time 2.5 min, adsorbent mass 20 mg and initial dye concentration at 5 mg L−1 for MB and EY and 12.5 mg L−1 for PR. The maximum adsorption capacity (Qmax) was calculated from the Langmuir isotherm as 32.9, 26.4 and 38.5 mg g−1 for the MB, EY and PR, respectively for the 0.015 g of sorbent. The adsorption kinetic data of the dyes were analyzed and was found fitting well in a pseudo-second-order equation. Adsorption isotherms and separation factors showed that the adsorbent displays a high selectivity toward one dye in a three-component system with an affinity order of PR > MB > EY. On the other hand, acoustic waves emitted by the cavitation bubbles render a direct effect on the process. This is attributed to the discrete nature and high pressure amplitude of the waves, which creates excessively high convection in the medium, causing adsorption of the pollutants. The chemical nature of the pollutants influences the enhancement effect of ultrasound. 2017 Journal Article http://hdl.handle.net/20.500.11937/8089 10.1016/j.ultsonch.2016.06.007 Elsevier restricted
spellingShingle Dashamiri, S.
Ghaedi, M.
Asfaram, A.
Zare, F.
Wang, Shaobin
Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design
title Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design
title_full Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design
title_fullStr Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design
title_full_unstemmed Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design
title_short Multi-response optimization of ultrasound assisted competitive adsorption of dyes onto Cu (OH)2-nanoparticle loaded activated carbon: Central composite design
title_sort multi-response optimization of ultrasound assisted competitive adsorption of dyes onto cu (oh)2-nanoparticle loaded activated carbon: central composite design
url http://hdl.handle.net/20.500.11937/8089