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Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection

Organic–inorganic ternary nanohybrids consisting of oxidized-single walled carbon nanohorns-SnO(2)-polyvinylpyrrolidone (ox-SWCNH/SnO(2)/PVP) with stoichiometry 1/1/1 and 2/1/1 and ox-SWCNH/ZnO/PVP = 5/2/1 and 5/3/2 (all mass ratios) were synthesized and characterized as sensing films of chemiresist...

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Autores principales: Cobianu, Cornel, Serban, Bogdan-Catalin, Dumbravescu, Niculae, Buiu, Octavian, Avramescu, Viorel, Pachiu, Cristina, Bita, Bogdan, Bumbac, Marius, Nicolescu, Cristina-Mihaela, Cobianu, Cosmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766401/
https://www.ncbi.nlm.nih.gov/pubmed/33353231
http://dx.doi.org/10.3390/nano10122552
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author Cobianu, Cornel
Serban, Bogdan-Catalin
Dumbravescu, Niculae
Buiu, Octavian
Avramescu, Viorel
Pachiu, Cristina
Bita, Bogdan
Bumbac, Marius
Nicolescu, Cristina-Mihaela
Cobianu, Cosmin
author_facet Cobianu, Cornel
Serban, Bogdan-Catalin
Dumbravescu, Niculae
Buiu, Octavian
Avramescu, Viorel
Pachiu, Cristina
Bita, Bogdan
Bumbac, Marius
Nicolescu, Cristina-Mihaela
Cobianu, Cosmin
author_sort Cobianu, Cornel
collection PubMed
description Organic–inorganic ternary nanohybrids consisting of oxidized-single walled carbon nanohorns-SnO(2)-polyvinylpyrrolidone (ox-SWCNH/SnO(2)/PVP) with stoichiometry 1/1/1 and 2/1/1 and ox-SWCNH/ZnO/PVP = 5/2/1 and 5/3/2 (all mass ratios) were synthesized and characterized as sensing films of chemiresistive test structures for ethanol vapor detection in dry air, in the range from 0 up to 50 mg/L. All the sensing films had an ox-SWCNH concentration in the range of 33.3–62.5 wt%. A comparison between the transfer functions and the response and recovery times of these sensing devices has shown that the structures with ox-SWCNH/SnO(2)/PVP = 1/1/1 have the highest relative sensitivities of 0.0022 (mg/L)(−1), while the devices with ox-SWCNH/SnO(2)/PVP = 2/1/1 have the lowest response time (15 s) and recovery time (50 s) for a room temperature operation, proving the key role of carbonic material in shaping the static and dynamic performance of the sensor. These response and recovery times are lower than those of “heated” commercial sensors. The sensing mechanism is explained in terms of the overall response of a p-type semiconductor, where ox-SWCNH percolated between electrodes of the sensor, shunting the heterojunctions made between n-type SnO(2) or ZnO and p-type ox-SWCNH. The hard–soft acid–base (HSAB) principle supports this mechanism. The low power consumption of these devices, below 2 mW, and the sensing performances at room temperature may open new avenues towards ethanol sensors for passive samplers of environment monitoring, alcohol test portable instruments and wireless network sensors for Internet of Things applications.
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spelling pubmed-77664012020-12-28 Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection Cobianu, Cornel Serban, Bogdan-Catalin Dumbravescu, Niculae Buiu, Octavian Avramescu, Viorel Pachiu, Cristina Bita, Bogdan Bumbac, Marius Nicolescu, Cristina-Mihaela Cobianu, Cosmin Nanomaterials (Basel) Article Organic–inorganic ternary nanohybrids consisting of oxidized-single walled carbon nanohorns-SnO(2)-polyvinylpyrrolidone (ox-SWCNH/SnO(2)/PVP) with stoichiometry 1/1/1 and 2/1/1 and ox-SWCNH/ZnO/PVP = 5/2/1 and 5/3/2 (all mass ratios) were synthesized and characterized as sensing films of chemiresistive test structures for ethanol vapor detection in dry air, in the range from 0 up to 50 mg/L. All the sensing films had an ox-SWCNH concentration in the range of 33.3–62.5 wt%. A comparison between the transfer functions and the response and recovery times of these sensing devices has shown that the structures with ox-SWCNH/SnO(2)/PVP = 1/1/1 have the highest relative sensitivities of 0.0022 (mg/L)(−1), while the devices with ox-SWCNH/SnO(2)/PVP = 2/1/1 have the lowest response time (15 s) and recovery time (50 s) for a room temperature operation, proving the key role of carbonic material in shaping the static and dynamic performance of the sensor. These response and recovery times are lower than those of “heated” commercial sensors. The sensing mechanism is explained in terms of the overall response of a p-type semiconductor, where ox-SWCNH percolated between electrodes of the sensor, shunting the heterojunctions made between n-type SnO(2) or ZnO and p-type ox-SWCNH. The hard–soft acid–base (HSAB) principle supports this mechanism. The low power consumption of these devices, below 2 mW, and the sensing performances at room temperature may open new avenues towards ethanol sensors for passive samplers of environment monitoring, alcohol test portable instruments and wireless network sensors for Internet of Things applications. MDPI 2020-12-18 /pmc/articles/PMC7766401/ /pubmed/33353231 http://dx.doi.org/10.3390/nano10122552 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cobianu, Cornel
Serban, Bogdan-Catalin
Dumbravescu, Niculae
Buiu, Octavian
Avramescu, Viorel
Pachiu, Cristina
Bita, Bogdan
Bumbac, Marius
Nicolescu, Cristina-Mihaela
Cobianu, Cosmin
Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection
title Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection
title_full Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection
title_fullStr Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection
title_full_unstemmed Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection
title_short Organic–Inorganic Ternary Nanohybrids of Single-Walled Carbon Nanohorns for Room Temperature Chemiresistive Ethanol Detection
title_sort organic–inorganic ternary nanohybrids of single-walled carbon nanohorns for room temperature chemiresistive ethanol detection
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766401/
https://www.ncbi.nlm.nih.gov/pubmed/33353231
http://dx.doi.org/10.3390/nano10122552
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