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Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis

The present research synthesized manganese dioxide nano-flowers (β-MnO(2)-NF) via a simplified technique for electro-catalytic utilization. Moreover, morphological characteristics and X-ray analyses showed Mn in the oxide form with β-type crystallographic structure. In addition, the research propose...

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Autores principales: Akbari, Sedigheh, Jahani, Shohreh, Foroughi, Mohammad Mehdi, Hassani Nadiki, Hadi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057335/
https://www.ncbi.nlm.nih.gov/pubmed/35517539
http://dx.doi.org/10.1039/d0ra06480g
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author Akbari, Sedigheh
Jahani, Shohreh
Foroughi, Mohammad Mehdi
Hassani Nadiki, Hadi
author_facet Akbari, Sedigheh
Jahani, Shohreh
Foroughi, Mohammad Mehdi
Hassani Nadiki, Hadi
author_sort Akbari, Sedigheh
collection PubMed
description The present research synthesized manganese dioxide nano-flowers (β-MnO(2)-NF) via a simplified technique for electro-catalytic utilization. Moreover, morphological characteristics and X-ray analyses showed Mn in the oxide form with β-type crystallographic structure. In addition, the research proposed a new efficient electro-chemical sensor to detect methadone at the modified glassy carbon electrode (β-MnO(2)-NF/GCE). It has been found that oxidizing methadone is irreversible and shows a diffusion controlled procedure at the β-MnO(2)-NF/GCE. Moreover, β-MnO(2)-NF/GCE was considerably enhanced in the anodic peak current of methadone related to the separation of morphine and methadone overlapping voltammetric responses with probable difference of 510 mV. In addition, a linear increase has been observed between the catalytic peak currents gained by the differential pulse voltammetry (DPV) of morphine and methadone and their concentrations in the range between 0.1–200.0 μM and 0.1–250.0 μM, respectively. Furthermore, the limits of detection (LOD) for methadone and morphine were found to be 5.6 nM and 8.3 nM, respectively. It has been found that our electrode could have a successful application for detecting methadone and morphine in the drug dose form, urine, and saliva samples. Thus, this condition demonstrated that β-MnO(2)-NF/GCE displays good analytical performances for the detection of methadone.
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spelling pubmed-90573352022-05-04 Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis Akbari, Sedigheh Jahani, Shohreh Foroughi, Mohammad Mehdi Hassani Nadiki, Hadi RSC Adv Chemistry The present research synthesized manganese dioxide nano-flowers (β-MnO(2)-NF) via a simplified technique for electro-catalytic utilization. Moreover, morphological characteristics and X-ray analyses showed Mn in the oxide form with β-type crystallographic structure. In addition, the research proposed a new efficient electro-chemical sensor to detect methadone at the modified glassy carbon electrode (β-MnO(2)-NF/GCE). It has been found that oxidizing methadone is irreversible and shows a diffusion controlled procedure at the β-MnO(2)-NF/GCE. Moreover, β-MnO(2)-NF/GCE was considerably enhanced in the anodic peak current of methadone related to the separation of morphine and methadone overlapping voltammetric responses with probable difference of 510 mV. In addition, a linear increase has been observed between the catalytic peak currents gained by the differential pulse voltammetry (DPV) of morphine and methadone and their concentrations in the range between 0.1–200.0 μM and 0.1–250.0 μM, respectively. Furthermore, the limits of detection (LOD) for methadone and morphine were found to be 5.6 nM and 8.3 nM, respectively. It has been found that our electrode could have a successful application for detecting methadone and morphine in the drug dose form, urine, and saliva samples. Thus, this condition demonstrated that β-MnO(2)-NF/GCE displays good analytical performances for the detection of methadone. The Royal Society of Chemistry 2020-10-19 /pmc/articles/PMC9057335/ /pubmed/35517539 http://dx.doi.org/10.1039/d0ra06480g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Akbari, Sedigheh
Jahani, Shohreh
Foroughi, Mohammad Mehdi
Hassani Nadiki, Hadi
Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis
title Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis
title_full Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis
title_fullStr Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis
title_full_unstemmed Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis
title_short Simultaneous determination of methadone and morphine at a modified electrode with 3D β-MnO(2) nanoflowers: application for pharmaceutical sample analysis
title_sort simultaneous determination of methadone and morphine at a modified electrode with 3d β-mno(2) nanoflowers: application for pharmaceutical sample analysis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057335/
https://www.ncbi.nlm.nih.gov/pubmed/35517539
http://dx.doi.org/10.1039/d0ra06480g
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