Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM)
Introduction: Advanced oxidation processes (AOPs) suggest a highly reactive, nonspecific oxidant namely hydroxyl radical (OH•), that oxidize a wide range of pollutants fast and non-selective in wastewater and water. Materials and methods: In this work, the nitrogen-doped titanium dioxide nanopartic...
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Ilam University of Medical Sciences
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doaj-8c43fac99e224c80a1e49fa50bcae50e2020-11-24T23:57:55ZengIlam University of Medical SciencesJournal of Basic Research in Medical Sciences2383-05062383-09722017-03-01422940Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM)Mohsen Nademi0Mostafa Keshavarz Moraveji1Mohsen Mansouri2 Department of Chemical Engineering, Islamic Azad University, Tehran North Branch, Tehran, Iran Department of Chemical Engineering, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran Department of Chemical Engineering, Ilam University, Ilam, Iran Introduction: Advanced oxidation processes (AOPs) suggest a highly reactive, nonspecific oxidant namely hydroxyl radical (OH•), that oxidize a wide range of pollutants fast and non-selective in wastewater and water. Materials and methods: In this work, the nitrogen-doped titanium dioxide nanoparticles were primed by sol-gel method, characterized by X-ray diffraction and Scanning Electron Microscopy (SEM), for the degradation of Acid Red 40 (AR 40) solution in water. The effectiveness of the treatment method applied for the degradation of AR 40 based on AOPs was investigated. Results: The three various key parameters were optimized by using response surface modeling, namely: pH, TiO2-N concentration and the initial AR 40 concentrations. The optimized values were obtained at pH = 11, TiO2-N concentration = 0.09 g/L, and the initial AR 40 concentration = 19 mg/L. Conclusion: Under the optimum conditions, performance of photocatalytic degradation reaches 92.47% in 1 hr. Kinetic constant was evaluated using first-order equation to obtain the rate constant, K.http://jbrms.medilam.ac.ir/browse.php?a_code=A-10-245-1&slc_lang=en&sid=1Photocatalytic degradationAR 40TiO2-N nanoparticlesResponse surface modeling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mohsen Nademi Mostafa Keshavarz Moraveji Mohsen Mansouri |
spellingShingle |
Mohsen Nademi Mostafa Keshavarz Moraveji Mohsen Mansouri Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM) Journal of Basic Research in Medical Sciences Photocatalytic degradation AR 40 TiO2-N nanoparticles Response surface modeling |
author_facet |
Mohsen Nademi Mostafa Keshavarz Moraveji Mohsen Mansouri |
author_sort |
Mohsen Nademi |
title |
Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM) |
title_short |
Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM) |
title_full |
Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM) |
title_fullStr |
Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM) |
title_full_unstemmed |
Investigation of UV/TiO2-N photocatalytic degradation of AR 40 using response surface methodology (RSM) |
title_sort |
investigation of uv/tio2-n photocatalytic degradation of ar 40 using response surface methodology (rsm) |
publisher |
Ilam University of Medical Sciences |
series |
Journal of Basic Research in Medical Sciences |
issn |
2383-0506 2383-0972 |
publishDate |
2017-03-01 |
description |
Introduction: Advanced oxidation processes (AOPs) suggest a highly reactive, nonspecific oxidant namely hydroxyl radical (OH•), that oxidize a wide range of pollutants fast and non-selective in wastewater and water.
Materials and methods: In this work, the nitrogen-doped titanium dioxide nanoparticles were primed by sol-gel method, characterized by X-ray diffraction and Scanning Electron Microscopy (SEM), for the degradation of Acid Red 40 (AR 40) solution in water. The effectiveness of the treatment method applied for the degradation of AR 40 based on AOPs was investigated.
Results: The three various key parameters were optimized by using response surface modeling, namely: pH, TiO2-N concentration and the initial AR 40 concentrations. The optimized values were obtained at pH = 11, TiO2-N concentration = 0.09 g/L, and the initial AR 40 concentration = 19 mg/L.
Conclusion: Under the optimum conditions, performance of photocatalytic degradation reaches 92.47% in 1 hr. Kinetic constant was evaluated using first-order equation to obtain the rate constant, K. |
topic |
Photocatalytic degradation AR 40 TiO2-N nanoparticles Response surface modeling |
url |
http://jbrms.medilam.ac.ir/browse.php?a_code=A-10-245-1&slc_lang=en&sid=1 |
work_keys_str_mv |
AT mohsennademi investigationofuvtio2nphotocatalyticdegradationofar40usingresponsesurfacemethodologyrsm AT mostafakeshavarzmoraveji investigationofuvtio2nphotocatalyticdegradationofar40usingresponsesurfacemethodologyrsm AT mohsenmansouri investigationofuvtio2nphotocatalyticdegradationofar40usingresponsesurfacemethodologyrsm |
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