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Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor

The current study aims at the development of an electrochemical sensor based on a silver nanoparticle–reduced graphene oxide–polyaniline (AgNPs–rGO–PANI) nanocomposite for the sensitive and selective detection of hydrogen peroxide (H(2)O(2)). The nanocomposite was fabricated by simple in situ synthe...

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Autores principales: Kumar, Vijay, Gupta, Rajeev Kumar, Gundampati, Ravi Kumar, Singh, Devendra Kumar, Mohan, Sweta, Hasan, Syed Hadi, Malviya, Manisha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076931/
https://www.ncbi.nlm.nih.gov/pubmed/35538993
http://dx.doi.org/10.1039/c7ra11466d
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author Kumar, Vijay
Gupta, Rajeev Kumar
Gundampati, Ravi Kumar
Singh, Devendra Kumar
Mohan, Sweta
Hasan, Syed Hadi
Malviya, Manisha
author_facet Kumar, Vijay
Gupta, Rajeev Kumar
Gundampati, Ravi Kumar
Singh, Devendra Kumar
Mohan, Sweta
Hasan, Syed Hadi
Malviya, Manisha
author_sort Kumar, Vijay
collection PubMed
description The current study aims at the development of an electrochemical sensor based on a silver nanoparticle–reduced graphene oxide–polyaniline (AgNPs–rGO–PANI) nanocomposite for the sensitive and selective detection of hydrogen peroxide (H(2)O(2)). The nanocomposite was fabricated by simple in situ synthesis of PANI at the surface of rGO sheet which was followed by stirring with AEC biosynthesized AgNPs to form a nanocomposite. The AgNPs, GO, rGO, PANI, rGO–PANI, and AgNPs–rGO–PANI nanocomposite and their interaction were studied by UV-vis, FTIR, XRD, SEM, EDX and XPS analysis. AgNPs–rGO–PANI nanocomposite was loaded (0.5 mg cm(−2)) on a glassy carbon electrode (GCE) where the active surface area was maintained at 0.2 cm(2) for investigation of the electrochemical properties. It was found that AgNPs–rGO–PANI–GCE had high sensitivity towards the reduction of H(2)O(2) than AgNPs–rGO which occurred at −0.4 V vs. SCE due to the presence of PANI (AgNPs have direct electronic interaction with N atom of the PANI backbone) which enhanced the rate of transfer of electron during the electrochemical reduction of H(2)O(2). The calibration plots of H(2)O(2) electrochemical detection was established in the range of 0.01 μM to 1000 μM (R(2) = 0.99) with a detection limit of 50 nM, the response time of about 5 s at a signal-to-noise ratio (S/N = 3). The sensitivity was calculated as 14.7 μA mM(−1) cm(−2) which indicated a significant potential as a non-enzymatic H(2)O(2) sensor.
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spelling pubmed-90769312022-05-09 Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor Kumar, Vijay Gupta, Rajeev Kumar Gundampati, Ravi Kumar Singh, Devendra Kumar Mohan, Sweta Hasan, Syed Hadi Malviya, Manisha RSC Adv Chemistry The current study aims at the development of an electrochemical sensor based on a silver nanoparticle–reduced graphene oxide–polyaniline (AgNPs–rGO–PANI) nanocomposite for the sensitive and selective detection of hydrogen peroxide (H(2)O(2)). The nanocomposite was fabricated by simple in situ synthesis of PANI at the surface of rGO sheet which was followed by stirring with AEC biosynthesized AgNPs to form a nanocomposite. The AgNPs, GO, rGO, PANI, rGO–PANI, and AgNPs–rGO–PANI nanocomposite and their interaction were studied by UV-vis, FTIR, XRD, SEM, EDX and XPS analysis. AgNPs–rGO–PANI nanocomposite was loaded (0.5 mg cm(−2)) on a glassy carbon electrode (GCE) where the active surface area was maintained at 0.2 cm(2) for investigation of the electrochemical properties. It was found that AgNPs–rGO–PANI–GCE had high sensitivity towards the reduction of H(2)O(2) than AgNPs–rGO which occurred at −0.4 V vs. SCE due to the presence of PANI (AgNPs have direct electronic interaction with N atom of the PANI backbone) which enhanced the rate of transfer of electron during the electrochemical reduction of H(2)O(2). The calibration plots of H(2)O(2) electrochemical detection was established in the range of 0.01 μM to 1000 μM (R(2) = 0.99) with a detection limit of 50 nM, the response time of about 5 s at a signal-to-noise ratio (S/N = 3). The sensitivity was calculated as 14.7 μA mM(−1) cm(−2) which indicated a significant potential as a non-enzymatic H(2)O(2) sensor. The Royal Society of Chemistry 2018-01-04 /pmc/articles/PMC9076931/ /pubmed/35538993 http://dx.doi.org/10.1039/c7ra11466d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Kumar, Vijay
Gupta, Rajeev Kumar
Gundampati, Ravi Kumar
Singh, Devendra Kumar
Mohan, Sweta
Hasan, Syed Hadi
Malviya, Manisha
Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor
title Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor
title_full Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor
title_fullStr Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor
title_full_unstemmed Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor
title_short Enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor
title_sort enhanced electron transfer mediated detection of hydrogen peroxide using a silver nanoparticle–reduced graphene oxide–polyaniline fabricated electrochemical sensor
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076931/
https://www.ncbi.nlm.nih.gov/pubmed/35538993
http://dx.doi.org/10.1039/c7ra11466d
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