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Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite

The conductive composite Co@SnO(2)–PANI was successfully synthesized using hydrothermal/oxidative synthesis. Using differential pulse voltammetry, a glassy carbon electrode modified with a CoSnO(2)–PANI (polyaniline)-based electrochemical biosensor has been created for the quick detection of two phe...

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Autores principales: Saleem, Qasar, Shahid, Sammia, Javed, Mohsin, Iqbal, Shahid, Rahim, Abdur, Mansoor, Sana, Bahadur, Ali, Awwad, Nasser S., Ibrahium, Hala A., Almufarij, Rasmiah S., Elkaeed, Eslam B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10052555/
https://www.ncbi.nlm.nih.gov/pubmed/37006370
http://dx.doi.org/10.1039/d3ra00668a
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author Saleem, Qasar
Shahid, Sammia
Javed, Mohsin
Iqbal, Shahid
Rahim, Abdur
Mansoor, Sana
Bahadur, Ali
Awwad, Nasser S.
Ibrahium, Hala A.
Almufarij, Rasmiah S.
Elkaeed, Eslam B.
author_facet Saleem, Qasar
Shahid, Sammia
Javed, Mohsin
Iqbal, Shahid
Rahim, Abdur
Mansoor, Sana
Bahadur, Ali
Awwad, Nasser S.
Ibrahium, Hala A.
Almufarij, Rasmiah S.
Elkaeed, Eslam B.
author_sort Saleem, Qasar
collection PubMed
description The conductive composite Co@SnO(2)–PANI was successfully synthesized using hydrothermal/oxidative synthesis. Using differential pulse voltammetry, a glassy carbon electrode modified with a CoSnO(2)–PANI (polyaniline)-based electrochemical biosensor has been created for the quick detection of two phenolics, hydroquinone (Hq) and catechol (Cat). Differential pulse voltammetry (DPV) measurements revealed two well-resolved, strong peaks for GCE@Co–SnO(2)–PANI, which corresponded to the oxidation of Hq and Cat at 275.87 mV and +373.76 mV, respectively. The oxidation peaks of Hq and Cat mixtures were defined and separated at a pH of 8.5. High conductivity and remarkable selectivity reproducibility was tested by electrochemical impedance spectroscopy, chronoamperometry, and cyclic voltammetry techniques in standard solution and real water samples. The proposed biosensor displayed a low detection limit of 4.94 nM (Hq) and 1.5786 nM (Cat), as well as a large linear range stretching from 2 × 10(−2) M to 2 × 10(−1) M. The real-sample testing showed a good recovery for the immediate detection of Hq (96.4% recovery) and Cat (98.8% recovery) using the investigated sensing apparatus. The synthesized biosensor was characterized by XRD, FTIR, energy dispersive spectroscopy and scanning electron microscopy.
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spelling pubmed-100525552023-03-30 Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite Saleem, Qasar Shahid, Sammia Javed, Mohsin Iqbal, Shahid Rahim, Abdur Mansoor, Sana Bahadur, Ali Awwad, Nasser S. Ibrahium, Hala A. Almufarij, Rasmiah S. Elkaeed, Eslam B. RSC Adv Chemistry The conductive composite Co@SnO(2)–PANI was successfully synthesized using hydrothermal/oxidative synthesis. Using differential pulse voltammetry, a glassy carbon electrode modified with a CoSnO(2)–PANI (polyaniline)-based electrochemical biosensor has been created for the quick detection of two phenolics, hydroquinone (Hq) and catechol (Cat). Differential pulse voltammetry (DPV) measurements revealed two well-resolved, strong peaks for GCE@Co–SnO(2)–PANI, which corresponded to the oxidation of Hq and Cat at 275.87 mV and +373.76 mV, respectively. The oxidation peaks of Hq and Cat mixtures were defined and separated at a pH of 8.5. High conductivity and remarkable selectivity reproducibility was tested by electrochemical impedance spectroscopy, chronoamperometry, and cyclic voltammetry techniques in standard solution and real water samples. The proposed biosensor displayed a low detection limit of 4.94 nM (Hq) and 1.5786 nM (Cat), as well as a large linear range stretching from 2 × 10(−2) M to 2 × 10(−1) M. The real-sample testing showed a good recovery for the immediate detection of Hq (96.4% recovery) and Cat (98.8% recovery) using the investigated sensing apparatus. The synthesized biosensor was characterized by XRD, FTIR, energy dispersive spectroscopy and scanning electron microscopy. The Royal Society of Chemistry 2023-03-29 /pmc/articles/PMC10052555/ /pubmed/37006370 http://dx.doi.org/10.1039/d3ra00668a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Saleem, Qasar
Shahid, Sammia
Javed, Mohsin
Iqbal, Shahid
Rahim, Abdur
Mansoor, Sana
Bahadur, Ali
Awwad, Nasser S.
Ibrahium, Hala A.
Almufarij, Rasmiah S.
Elkaeed, Eslam B.
Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite
title Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite
title_full Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite
title_fullStr Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite
title_full_unstemmed Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite
title_short Synchronized electrochemical detection of hydroquinone and catechol in real water samples using a Co@SnO(2)–polyaniline composite
title_sort synchronized electrochemical detection of hydroquinone and catechol in real water samples using a co@sno(2)–polyaniline composite
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10052555/
https://www.ncbi.nlm.nih.gov/pubmed/37006370
http://dx.doi.org/10.1039/d3ra00668a
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