Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent
Existing methods used in tracing Tetracyclines' antibiotics (TCAs) residues which pose serious environmental problems, consume high amounts of organic solvents, are time-consuming, and are relatively expensive. A simple and effective magnetic solid-phase extraction (MSPE) based on reduced graph...
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Gadjah Mada University
2021
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2-s2.0-85118660489 Abdullah U.A.A.U.; Hanapi N.S.M.; Ibrahim W.N.W.; Hadzir N.M.; Zaini N.; Anis A.L.; Yahaya N. Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent 2021 Indonesian Journal of Chemistry 21 5 10.22146/IJC.64414 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85118660489&doi=10.22146%2fIJC.64414&partnerID=40&md5=80f2c798fae66be995cab20997e2e166 Existing methods used in tracing Tetracyclines' antibiotics (TCAs) residues which pose serious environmental problems, consume high amounts of organic solvents, are time-consuming, and are relatively expensive. A simple and effective magnetic solid-phase extraction (MSPE) based on reduced graphene oxide/magnetite (RGO/Fe3 O4 ) nanocomposite sorbent was successfully developed for preconcentration and extraction of TCAs residues from water samples. The analytes were determined by high-performance liquid chromatography with a diode-array detector (HPLC-DAD). The synthesized nanocomposite was characterized using Fourier-transform infrared spectroscopy (FTIR), X-ray diffractometry (XRD), and field emission scanning electron microscopy (FESEM). Sample pH, amount of adsorbent, sample volume, extraction time, desorption time, and desorption solvent were evaluated and optimized. Under optimized conditions, the method demonstrated good linearity over the concentration range of 0.05–1.0 mg L–1 with the coefficient of determination (R2 ) ≥ 0.9978. Limit of detection (LOD) and limit of quantification (LOQ) were 0.006–0.011 mg L–1 and 0.019–0.036 mg L–1, respectively. The accuracy and precision of the developed method were proven by good analyte recovery (89.77–106.33%) and acceptable precision with relative standard deviation, RSD ≤ 5.54%. The results showed that magnetic solid RGO/Fe3 O4 could be a suitable adsorbent in the preconcentration and extraction of TCAs in water samples. © 2021, Gadjah Mada University. All rights reserved. Gadjah Mada University 14119420 English Article All Open Access; Gold Open Access |
author |
Abdullah U.A.A.U.; Hanapi N.S.M.; Ibrahim W.N.W.; Hadzir N.M.; Zaini N.; Anis A.L.; Yahaya N. |
spellingShingle |
Abdullah U.A.A.U.; Hanapi N.S.M.; Ibrahim W.N.W.; Hadzir N.M.; Zaini N.; Anis A.L.; Yahaya N. Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent |
author_facet |
Abdullah U.A.A.U.; Hanapi N.S.M.; Ibrahim W.N.W.; Hadzir N.M.; Zaini N.; Anis A.L.; Yahaya N. |
author_sort |
Abdullah U.A.A.U.; Hanapi N.S.M.; Ibrahim W.N.W.; Hadzir N.M.; Zaini N.; Anis A.L.; Yahaya N. |
title |
Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent |
title_short |
Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent |
title_full |
Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent |
title_fullStr |
Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent |
title_full_unstemmed |
Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent |
title_sort |
Pre-concentration and determination of tetracyclines antibiotics residues in water samples using rgo/fe3o4 nanocomposite as extraction sorbent |
publishDate |
2021 |
container_title |
Indonesian Journal of Chemistry |
container_volume |
21 |
container_issue |
5 |
doi_str_mv |
10.22146/IJC.64414 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85118660489&doi=10.22146%2fIJC.64414&partnerID=40&md5=80f2c798fae66be995cab20997e2e166 |
description |
Existing methods used in tracing Tetracyclines' antibiotics (TCAs) residues which pose serious environmental problems, consume high amounts of organic solvents, are time-consuming, and are relatively expensive. A simple and effective magnetic solid-phase extraction (MSPE) based on reduced graphene oxide/magnetite (RGO/Fe3 O4 ) nanocomposite sorbent was successfully developed for preconcentration and extraction of TCAs residues from water samples. The analytes were determined by high-performance liquid chromatography with a diode-array detector (HPLC-DAD). The synthesized nanocomposite was characterized using Fourier-transform infrared spectroscopy (FTIR), X-ray diffractometry (XRD), and field emission scanning electron microscopy (FESEM). Sample pH, amount of adsorbent, sample volume, extraction time, desorption time, and desorption solvent were evaluated and optimized. Under optimized conditions, the method demonstrated good linearity over the concentration range of 0.05–1.0 mg L–1 with the coefficient of determination (R2 ) ≥ 0.9978. Limit of detection (LOD) and limit of quantification (LOQ) were 0.006–0.011 mg L–1 and 0.019–0.036 mg L–1, respectively. The accuracy and precision of the developed method were proven by good analyte recovery (89.77–106.33%) and acceptable precision with relative standard deviation, RSD ≤ 5.54%. The results showed that magnetic solid RGO/Fe3 O4 could be a suitable adsorbent in the preconcentration and extraction of TCAs in water samples. © 2021, Gadjah Mada University. All rights reserved. |
publisher |
Gadjah Mada University |
issn |
14119420 |
language |
English |
format |
Article |
accesstype |
All Open Access; Gold Open Access |
record_format |
scopus |
collection |
Scopus |
_version_ |
1809677598188371968 |