Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous Solutions

Background: Magnesium oxide is one of the alkaline earth metal oxides which due to its catalytic properties has been widely used in the analysis of hazardous chemicals. The main purpose of this study was to remove tetracycline antibiotics using magnesium nano oxide. Methods: In this study, magnesium...

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Main Authors: Bahareh Mirzahedayat, Masoomeh Entezari, Mansur Zarrabi, Emad Dehghanifard, Mohammad Noorisepehr
Format: Article
Language:fas
Published: Alborz University of Medical Sciences 2020-02-01
Series:Muhandisī-i Bihdāsht-i Muḥīṭ
Subjects:
Online Access:http://jehe.abzums.ac.ir/article-1-737-en.html
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spelling doaj-e0c3c3bd79ff4ad28d3b6ddd4abcd21f2020-11-25T03:11:23ZfasAlborz University of Medical SciencesMuhandisī-i Bihdāsht-i Muḥīṭ2383-32112020-02-0172152164Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous SolutionsBahareh Mirzahedayat0Masoomeh Entezari1Mansur Zarrabi2Emad Dehghanifard3Mohammad Noorisepehr4 Department of Environmental Health Engineering, School of Public Health, Alborz University of Medical Sciences, Karaj, Iran Department of Environmental Health Engineering, School of Public Health, Alborz University of Medical Sciences, Karaj, Iran Department of Environmental Health Engineering, School of Public Health, Alborz University of Medical Sciences, Karaj, Iran. 2. Research Center for Health, Safety and Environment, Alborz University of Medical Sciences, Karaj, Iran Department of Environmental Health Engineering, School of Public Health, Alborz University of Medical Sciences, Karaj, Iran. 2. Research Center for Health, Safety and Environment, Alborz University of Medical Sciences, Karaj, Iran Department of Environmental Health Engineering, School of Public Health, Alborz University of Medical Sciences, Karaj, Iran. 2. Research Center for Health, Safety and Environment, Alborz University of Medical Sciences, Karaj, Iran Background: Magnesium oxide is one of the alkaline earth metal oxides which due to its catalytic properties has been widely used in the analysis of hazardous chemicals. The main purpose of this study was to remove tetracycline antibiotics using magnesium nano oxide. Methods: In this study, magnesium oxide nanoparticles were synthesized in the presence of cetyl trimethyl ammonium bromide. Synthesized nanoparticles were analyzed by X-ray diffraction (XRD), thermal analysis (TGA), transmission microscopic analysis (TEM), particle size distribution analysis (DLS), infrared radiation analysis (FTIR) and electron diffraction (FES) electron microscopy (FES). In the next step, the efficiency of the synthesized nanoparticles in the batch system was investigated by changing one parameter and keeping the other parameters constant in removal of the tetracycline antibiotic. Results: Increasing the pH from 3 to 7 caused efficiency increase, but decreased again to pH = 11. As the contact time increases, the efficiency increases. This increase was steepest for 60 minutes and is almost constant after 60 minutes. According to other available concentrations,the contact time of  60 minutes was chosen as the optimum time. The efficiency without the presence of interfering ions in optimum condition was 81.68%. By adding the interfering ions the efficiency at the lowest concentration level of the interferers was 62.29% (nitrate), 40.11% (sulfate), 55.32% (Cu) and 43.56% (fluoride) decreased. The highest reduction was obtained with sulfate ion at 300 ppm which showed an efficiency of 15%. Conclusion: The results of this study showed that MgO adsorbent can efficiently remove tetracycline contaminants from water resources.http://jehe.abzums.ac.ir/article-1-737-en.htmlmagnesium oxide nanoparticlestetracycline antibioticaqueous solutionsadsorption
collection DOAJ
language fas
format Article
sources DOAJ
author Bahareh Mirzahedayat
Masoomeh Entezari
Mansur Zarrabi
Emad Dehghanifard
Mohammad Noorisepehr
spellingShingle Bahareh Mirzahedayat
Masoomeh Entezari
Mansur Zarrabi
Emad Dehghanifard
Mohammad Noorisepehr
Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous Solutions
Muhandisī-i Bihdāsht-i Muḥīṭ
magnesium oxide nanoparticles
tetracycline antibiotic
aqueous solutions
adsorption
author_facet Bahareh Mirzahedayat
Masoomeh Entezari
Mansur Zarrabi
Emad Dehghanifard
Mohammad Noorisepehr
author_sort Bahareh Mirzahedayat
title Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous Solutions
title_short Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous Solutions
title_full Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous Solutions
title_fullStr Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous Solutions
title_full_unstemmed Synthesis of Magnesium Oxide Nanoparticles and Their Application in Removal of Tetracycline Antibiotic from Aqueous Solutions
title_sort synthesis of magnesium oxide nanoparticles and their application in removal of tetracycline antibiotic from aqueous solutions
publisher Alborz University of Medical Sciences
series Muhandisī-i Bihdāsht-i Muḥīṭ
issn 2383-3211
publishDate 2020-02-01
description Background: Magnesium oxide is one of the alkaline earth metal oxides which due to its catalytic properties has been widely used in the analysis of hazardous chemicals. The main purpose of this study was to remove tetracycline antibiotics using magnesium nano oxide. Methods: In this study, magnesium oxide nanoparticles were synthesized in the presence of cetyl trimethyl ammonium bromide. Synthesized nanoparticles were analyzed by X-ray diffraction (XRD), thermal analysis (TGA), transmission microscopic analysis (TEM), particle size distribution analysis (DLS), infrared radiation analysis (FTIR) and electron diffraction (FES) electron microscopy (FES). In the next step, the efficiency of the synthesized nanoparticles in the batch system was investigated by changing one parameter and keeping the other parameters constant in removal of the tetracycline antibiotic. Results: Increasing the pH from 3 to 7 caused efficiency increase, but decreased again to pH = 11. As the contact time increases, the efficiency increases. This increase was steepest for 60 minutes and is almost constant after 60 minutes. According to other available concentrations,the contact time of  60 minutes was chosen as the optimum time. The efficiency without the presence of interfering ions in optimum condition was 81.68%. By adding the interfering ions the efficiency at the lowest concentration level of the interferers was 62.29% (nitrate), 40.11% (sulfate), 55.32% (Cu) and 43.56% (fluoride) decreased. The highest reduction was obtained with sulfate ion at 300 ppm which showed an efficiency of 15%. Conclusion: The results of this study showed that MgO adsorbent can efficiently remove tetracycline contaminants from water resources.
topic magnesium oxide nanoparticles
tetracycline antibiotic
aqueous solutions
adsorption
url http://jehe.abzums.ac.ir/article-1-737-en.html
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