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Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride

Two metal oxide nanoparticles, magnesium oxide nanoparticles (MgONPs) and aluminum oxide nanoparticles (Al(2)O(3)NPs), were synthesized from green sources, Salvia officials and Cuminum cyminum seed extract, respectively. These nanoparticles were used for construction of potentiometric enhancement se...

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Autores principales: Alshehri, Eman M., Alarfaj, Nawal A., Al-Tamimi, Salma A., El-Tohamy, Maha F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9571185/
https://www.ncbi.nlm.nih.gov/pubmed/36236096
http://dx.doi.org/10.3390/polym14194150
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author Alshehri, Eman M.
Alarfaj, Nawal A.
Al-Tamimi, Salma A.
El-Tohamy, Maha F.
author_facet Alshehri, Eman M.
Alarfaj, Nawal A.
Al-Tamimi, Salma A.
El-Tohamy, Maha F.
author_sort Alshehri, Eman M.
collection PubMed
description Two metal oxide nanoparticles, magnesium oxide nanoparticles (MgONPs) and aluminum oxide nanoparticles (Al(2)O(3)NPs), were synthesized from green sources, Salvia officials and Cuminum cyminum seed extract, respectively. These nanoparticles were used for construction of potentiometric enhancement sensors employed for the estimation of ranitidine hydrochloride (RNT) in authentic powder and commercial products. The electroactive substance ranitidine-phosphotungstate (RNT-PT) was formed by combining RNT with phosphotungstic acid (PTA) in the presence of plasticizing material o-nitrophenyloctyl ether (o-NPOE). The outcomes showed that the enhanced MgO and Al(2)O(3) nanosensors behaved linearly across the concentration ranges 1.0 × 10(−9)–1.0 × 10(−2) and 1.0 × 10(−10)–1.0 × 10(−2) mol L(−1), respectively. However, the conventional sensor (RNT-PT) displayed a linearity over 1.0 × 10(−6)–1.0 × 10(−2) mol L(−1). Least square equations were calculated as E(mV) = (54.1 ± 0.5) log (RNT) + 762.33, E(mV) = (58.6 ± 0.2) log (RNT) + 696.48, and E(mV) = (52.2 ± 0.7) log (RNT) + 756.76 for enriched nanometal oxides modified and conventional sensors, respectively. The correlation coefficients of regression equations were 0.9997, 0.9995, and 0.9992 for the above suggested sensors, respectively. The recorded results showed excellent sensitivity and selectivity of the modified nanometal oxide sensors for the quantification of the analyzed drug in its authentic samples and commercial products.
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spelling pubmed-95711852022-10-17 Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride Alshehri, Eman M. Alarfaj, Nawal A. Al-Tamimi, Salma A. El-Tohamy, Maha F. Polymers (Basel) Article Two metal oxide nanoparticles, magnesium oxide nanoparticles (MgONPs) and aluminum oxide nanoparticles (Al(2)O(3)NPs), were synthesized from green sources, Salvia officials and Cuminum cyminum seed extract, respectively. These nanoparticles were used for construction of potentiometric enhancement sensors employed for the estimation of ranitidine hydrochloride (RNT) in authentic powder and commercial products. The electroactive substance ranitidine-phosphotungstate (RNT-PT) was formed by combining RNT with phosphotungstic acid (PTA) in the presence of plasticizing material o-nitrophenyloctyl ether (o-NPOE). The outcomes showed that the enhanced MgO and Al(2)O(3) nanosensors behaved linearly across the concentration ranges 1.0 × 10(−9)–1.0 × 10(−2) and 1.0 × 10(−10)–1.0 × 10(−2) mol L(−1), respectively. However, the conventional sensor (RNT-PT) displayed a linearity over 1.0 × 10(−6)–1.0 × 10(−2) mol L(−1). Least square equations were calculated as E(mV) = (54.1 ± 0.5) log (RNT) + 762.33, E(mV) = (58.6 ± 0.2) log (RNT) + 696.48, and E(mV) = (52.2 ± 0.7) log (RNT) + 756.76 for enriched nanometal oxides modified and conventional sensors, respectively. The correlation coefficients of regression equations were 0.9997, 0.9995, and 0.9992 for the above suggested sensors, respectively. The recorded results showed excellent sensitivity and selectivity of the modified nanometal oxide sensors for the quantification of the analyzed drug in its authentic samples and commercial products. MDPI 2022-10-03 /pmc/articles/PMC9571185/ /pubmed/36236096 http://dx.doi.org/10.3390/polym14194150 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Alshehri, Eman M.
Alarfaj, Nawal A.
Al-Tamimi, Salma A.
El-Tohamy, Maha F.
Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride
title Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride
title_full Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride
title_fullStr Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride
title_full_unstemmed Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride
title_short Ultrasensitive Functionalized Polymeric-Nanometal Oxide Sensors for Potentiometric Determination of Ranitidine Hydrochloride
title_sort ultrasensitive functionalized polymeric-nanometal oxide sensors for potentiometric determination of ranitidine hydrochloride
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9571185/
https://www.ncbi.nlm.nih.gov/pubmed/36236096
http://dx.doi.org/10.3390/polym14194150
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