Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinations

Abstract The photocatalytic oxidation of methylene blue (MB) in aqueous media is explored using nanoscale ZnO nanoparticles (ZnO NPs) for maximal dye removal within the high-surface-area nanoparticle photocatalyst. The operating parameters such as illumination time, initial MB load, ZnO NP dose, sol...

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Main Authors: Aghareed M. Tayeb, Maha A. Tony, Ehsan K. Ismaeel
Format: Article
Language:English
Published: SpringerOpen 2019-03-01
Series:Applied Water Science
Subjects:
Online Access:http://link.springer.com/article/10.1007/s13201-019-0921-0
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spelling doaj-6670b411d37f4ec1861aec4c3eae3a312020-11-25T01:53:31ZengSpringerOpenApplied Water Science2190-54872190-54952019-03-019311110.1007/s13201-019-0921-0Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinationsAghareed M. Tayeb0Maha A. Tony1Ehsan K. Ismaeel2Chemical Engineering Department, Faculty of Engineering, Minia UniversityAdvanced Materials/Solar Energy and Environmental Sustainability (AMSEES) Laboratory, Basic Engineering Science Department, Faculty of Engineering, Shebin El-Kom, Menoufia UniversityEl-Minya High Institute for Engineering and TechnologyAbstract The photocatalytic oxidation of methylene blue (MB) in aqueous media is explored using nanoscale ZnO nanoparticles (ZnO NPs) for maximal dye removal within the high-surface-area nanoparticle photocatalyst. The operating parameters such as illumination time, initial MB load, ZnO NP dose, solution flow rate and pH were examined. The experimental results revealed the alkaline pH (12.0) corresponding to the higher oxidation rate within only 20 min of reaction time; however, increasing the initial MB load decreased the reaction rate at the optimum circulation flow rate of 460 mL/min and ZnO NP dose of 0.4 g. Additionally, for providing maximum performance, the interaction between the most effective independent parameters (ZnO NP dose, flow rate, and initial pH) were explored using Box–Behnken experimental design based on the response surface methodology. The results showed a good fitness of the model (R 2 = 96.86%) with the experimental data. The optimum values were recorded after 20 min of reaction time with the values: 0.45 g/L for ZnO NP dose, 370 mL/min for flow rate and pH 11, showing a 94% maximum dye removal compared to 92% using manual optimization. Finally, the kinetic models were applied and the data were described by second-order kinetic model.http://link.springer.com/article/10.1007/s13201-019-0921-0ZnO nanoparticlesMethylene blue (MB)PhotocatalysisOptimizationKinetics
collection DOAJ
language English
format Article
sources DOAJ
author Aghareed M. Tayeb
Maha A. Tony
Ehsan K. Ismaeel
spellingShingle Aghareed M. Tayeb
Maha A. Tony
Ehsan K. Ismaeel
Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinations
Applied Water Science
ZnO nanoparticles
Methylene blue (MB)
Photocatalysis
Optimization
Kinetics
author_facet Aghareed M. Tayeb
Maha A. Tony
Ehsan K. Ismaeel
author_sort Aghareed M. Tayeb
title Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinations
title_short Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinations
title_full Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinations
title_fullStr Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinations
title_full_unstemmed Engineered nanostructured ZnO for water remediation: operational parameters effect, Box–Behnken design optimization and kinetic determinations
title_sort engineered nanostructured zno for water remediation: operational parameters effect, box–behnken design optimization and kinetic determinations
publisher SpringerOpen
series Applied Water Science
issn 2190-5487
2190-5495
publishDate 2019-03-01
description Abstract The photocatalytic oxidation of methylene blue (MB) in aqueous media is explored using nanoscale ZnO nanoparticles (ZnO NPs) for maximal dye removal within the high-surface-area nanoparticle photocatalyst. The operating parameters such as illumination time, initial MB load, ZnO NP dose, solution flow rate and pH were examined. The experimental results revealed the alkaline pH (12.0) corresponding to the higher oxidation rate within only 20 min of reaction time; however, increasing the initial MB load decreased the reaction rate at the optimum circulation flow rate of 460 mL/min and ZnO NP dose of 0.4 g. Additionally, for providing maximum performance, the interaction between the most effective independent parameters (ZnO NP dose, flow rate, and initial pH) were explored using Box–Behnken experimental design based on the response surface methodology. The results showed a good fitness of the model (R 2 = 96.86%) with the experimental data. The optimum values were recorded after 20 min of reaction time with the values: 0.45 g/L for ZnO NP dose, 370 mL/min for flow rate and pH 11, showing a 94% maximum dye removal compared to 92% using manual optimization. Finally, the kinetic models were applied and the data were described by second-order kinetic model.
topic ZnO nanoparticles
Methylene blue (MB)
Photocatalysis
Optimization
Kinetics
url http://link.springer.com/article/10.1007/s13201-019-0921-0
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AT mahaatony engineerednanostructuredznoforwaterremediationoperationalparameterseffectboxbehnkendesignoptimizationandkineticdeterminations
AT ehsankismaeel engineerednanostructuredznoforwaterremediationoperationalparameterseffectboxbehnkendesignoptimizationandkineticdeterminations
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