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Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis

This study describes the construction of a lab-built Surface Plasmon Resonance (SPR) system for gas sensing applications employing a highly sensitive and trustworthy optical approach. The nanocomposite thin film of tin oxide (SnO(2)) and Polypyrrole (PPy) were prepared for sensing highly toxic gas,...

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Autores principales: Gahlot, Ajay Pratap Singh, Paliwal, Ayushi, Kapoor, Avinashi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9572410/
https://www.ncbi.nlm.nih.gov/pubmed/36236350
http://dx.doi.org/10.3390/s22197252
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author Gahlot, Ajay Pratap Singh
Paliwal, Ayushi
Kapoor, Avinashi
author_facet Gahlot, Ajay Pratap Singh
Paliwal, Ayushi
Kapoor, Avinashi
author_sort Gahlot, Ajay Pratap Singh
collection PubMed
description This study describes the construction of a lab-built Surface Plasmon Resonance (SPR) system for gas sensing applications employing a highly sensitive and trustworthy optical approach. The nanocomposite thin film of tin oxide (SnO(2)) and Polypyrrole (PPy) were prepared for sensing highly toxic gas, i.e., ammonia (NH(3)) gas. The gas sensor was validated by both optical and conductometric techniques of gas sensing. The optical SPR gas sensor is based on the change in refractive index at the SnO(2)/Polypyrrole (PPy) interface with gas adsorption (NH(3)). The thickness of SnO(2) and Polypyrrole thin films was optimised using theoretical calculations for a sharp SPR reflectance curve. The manuscript also offers theoretical SPR curves for different PPy and SnO(2) layer thicknesses. To support the theoretical conclusions, the effects of NH(3) gas on the prism/Au/SnO(2)/Polypyrrole system were also investigated experimentally. In comparison to other research described in the literature, it was observed that the constructed sensor’s sensitivity was higher. The obtained results demonstrate the utility of the SPR setup in the investigation of the interactions of adhered gas molecules with dielectrics and gas sensing. For conductometric gas sensing studies, the film having optimised thicknesses for sharp SPR reflectance curves was separately prepared on Interdigitated Electrodes. At a low working temperature of roughly 150 °C, the sensing response of the constructed film was observed and found to be maximal (60).
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spelling pubmed-95724102022-10-17 Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis Gahlot, Ajay Pratap Singh Paliwal, Ayushi Kapoor, Avinashi Sensors (Basel) Article This study describes the construction of a lab-built Surface Plasmon Resonance (SPR) system for gas sensing applications employing a highly sensitive and trustworthy optical approach. The nanocomposite thin film of tin oxide (SnO(2)) and Polypyrrole (PPy) were prepared for sensing highly toxic gas, i.e., ammonia (NH(3)) gas. The gas sensor was validated by both optical and conductometric techniques of gas sensing. The optical SPR gas sensor is based on the change in refractive index at the SnO(2)/Polypyrrole (PPy) interface with gas adsorption (NH(3)). The thickness of SnO(2) and Polypyrrole thin films was optimised using theoretical calculations for a sharp SPR reflectance curve. The manuscript also offers theoretical SPR curves for different PPy and SnO(2) layer thicknesses. To support the theoretical conclusions, the effects of NH(3) gas on the prism/Au/SnO(2)/Polypyrrole system were also investigated experimentally. In comparison to other research described in the literature, it was observed that the constructed sensor’s sensitivity was higher. The obtained results demonstrate the utility of the SPR setup in the investigation of the interactions of adhered gas molecules with dielectrics and gas sensing. For conductometric gas sensing studies, the film having optimised thicknesses for sharp SPR reflectance curves was separately prepared on Interdigitated Electrodes. At a low working temperature of roughly 150 °C, the sensing response of the constructed film was observed and found to be maximal (60). MDPI 2022-09-24 /pmc/articles/PMC9572410/ /pubmed/36236350 http://dx.doi.org/10.3390/s22197252 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
Gahlot, Ajay Pratap Singh
Paliwal, Ayushi
Kapoor, Avinashi
Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis
title Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis
title_full Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis
title_fullStr Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis
title_full_unstemmed Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis
title_short Exploitation of SnO(2)/Polypyrrole Interface for Detection of Ammonia Vapors Using Conductometric and Optical Techniques: A Theoretical and Experimental Analysis
title_sort exploitation of sno(2)/polypyrrole interface for detection of ammonia vapors using conductometric and optical techniques: a theoretical and experimental analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9572410/
https://www.ncbi.nlm.nih.gov/pubmed/36236350
http://dx.doi.org/10.3390/s22197252
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