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Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing

This paper presents the relative humidity (RH) sensing response of a resistive sensor employing sensing layers based on a ternary nanocomposite comprising graphene oxide-oxidized carbon nanohorns-polyvinylpyrrolidone (GO-CNHox–PVP), at 1/1/1, 1/2/1, and 1/3/1 w/w/w mass ratios. The sensing structure...

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Detalles Bibliográficos
Autores principales: Serban, Bogdan-Catalin, Cobianu, Cornel, Buiu, Octavian, Bumbac, Marius, Dumbravescu, Niculae, Avramescu, Viorel, Nicolescu, Cristina Mihaela, Brezeanu, Mihai, Pachiu, Cristina, Craciun, Gabriel, Radulescu, Cristiana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8196599/
https://www.ncbi.nlm.nih.gov/pubmed/34063918
http://dx.doi.org/10.3390/ma14112705
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author Serban, Bogdan-Catalin
Cobianu, Cornel
Buiu, Octavian
Bumbac, Marius
Dumbravescu, Niculae
Avramescu, Viorel
Nicolescu, Cristina Mihaela
Brezeanu, Mihai
Pachiu, Cristina
Craciun, Gabriel
Radulescu, Cristiana
author_facet Serban, Bogdan-Catalin
Cobianu, Cornel
Buiu, Octavian
Bumbac, Marius
Dumbravescu, Niculae
Avramescu, Viorel
Nicolescu, Cristina Mihaela
Brezeanu, Mihai
Pachiu, Cristina
Craciun, Gabriel
Radulescu, Cristiana
author_sort Serban, Bogdan-Catalin
collection PubMed
description This paper presents the relative humidity (RH) sensing response of a resistive sensor employing sensing layers based on a ternary nanocomposite comprising graphene oxide-oxidized carbon nanohorns-polyvinylpyrrolidone (GO-CNHox–PVP), at 1/1/1, 1/2/1, and 1/3/1 w/w/w mass ratios. The sensing structure is composed of a silicon substrate, a SiO(2) layer, and interdigitated transducers (IDT) electrodes, on which the sensing layer is deposited via the drop-casting method. The morphology and the composition of the sensing layers are investigated through scanning electron microscopy (SEM) and RAMAN spectroscopy. The RH sensing capability of each carbonaceous nanocomposite-based thin film was analyzed by applying a current between the two electrodes and by measuring the voltage difference when varying the RH from 0% to 100% in humid nitrogen. The sensors have a room temperature response comparable to that of a commercial humidity sensor and are characterized by a rapid response, excellent linearity, good sensitivity, and recovery time. The manufactured sensing devices’ transfer functions were established, and we extracted the response and recovery times. While the structures with GO/CNHox/PVP at 1/1/1 ratio (w/w/w) had the best performance in terms of relative sensibility, response time, and recovery time, the sensors employing the GO/CNHox/PVP nanocomposite at the 1/2/1 ratio (w/w/w) had the best linearity. Moreover, the ternary mixture proved to have much better sensing properties compared to CNHox and CNHox-PVP-based sensing layers in terms of sensitivity and linearity. Each component of the ternary nanocomposites’ functional role is explained based on their physical and chemical properties. We analyzed the potential mechanism associated with the sensors’ response; among these, the effect of the p-type semiconductor behavior of CNHox and GO, correlated with swelling of the PVP, was dominant and led to increased resistance of the sensing layer.
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spelling pubmed-81965992021-06-13 Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing Serban, Bogdan-Catalin Cobianu, Cornel Buiu, Octavian Bumbac, Marius Dumbravescu, Niculae Avramescu, Viorel Nicolescu, Cristina Mihaela Brezeanu, Mihai Pachiu, Cristina Craciun, Gabriel Radulescu, Cristiana Materials (Basel) Article This paper presents the relative humidity (RH) sensing response of a resistive sensor employing sensing layers based on a ternary nanocomposite comprising graphene oxide-oxidized carbon nanohorns-polyvinylpyrrolidone (GO-CNHox–PVP), at 1/1/1, 1/2/1, and 1/3/1 w/w/w mass ratios. The sensing structure is composed of a silicon substrate, a SiO(2) layer, and interdigitated transducers (IDT) electrodes, on which the sensing layer is deposited via the drop-casting method. The morphology and the composition of the sensing layers are investigated through scanning electron microscopy (SEM) and RAMAN spectroscopy. The RH sensing capability of each carbonaceous nanocomposite-based thin film was analyzed by applying a current between the two electrodes and by measuring the voltage difference when varying the RH from 0% to 100% in humid nitrogen. The sensors have a room temperature response comparable to that of a commercial humidity sensor and are characterized by a rapid response, excellent linearity, good sensitivity, and recovery time. The manufactured sensing devices’ transfer functions were established, and we extracted the response and recovery times. While the structures with GO/CNHox/PVP at 1/1/1 ratio (w/w/w) had the best performance in terms of relative sensibility, response time, and recovery time, the sensors employing the GO/CNHox/PVP nanocomposite at the 1/2/1 ratio (w/w/w) had the best linearity. Moreover, the ternary mixture proved to have much better sensing properties compared to CNHox and CNHox-PVP-based sensing layers in terms of sensitivity and linearity. Each component of the ternary nanocomposites’ functional role is explained based on their physical and chemical properties. We analyzed the potential mechanism associated with the sensors’ response; among these, the effect of the p-type semiconductor behavior of CNHox and GO, correlated with swelling of the PVP, was dominant and led to increased resistance of the sensing layer. MDPI 2021-05-21 /pmc/articles/PMC8196599/ /pubmed/34063918 http://dx.doi.org/10.3390/ma14112705 Text en © 2021 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
Serban, Bogdan-Catalin
Cobianu, Cornel
Buiu, Octavian
Bumbac, Marius
Dumbravescu, Niculae
Avramescu, Viorel
Nicolescu, Cristina Mihaela
Brezeanu, Mihai
Pachiu, Cristina
Craciun, Gabriel
Radulescu, Cristiana
Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing
title Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing
title_full Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing
title_fullStr Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing
title_full_unstemmed Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing
title_short Ternary Nanocomposites Based on Oxidized Carbon Nanohorns as Sensing Layers for Room Temperature Resistive Humidity Sensing
title_sort ternary nanocomposites based on oxidized carbon nanohorns as sensing layers for room temperature resistive humidity sensing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8196599/
https://www.ncbi.nlm.nih.gov/pubmed/34063918
http://dx.doi.org/10.3390/ma14112705
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