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Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors

The major drawback of oxide-based sensors is the lack of selectivity. In this context, Sn(x)Ti(1−x)O(2)/graphene oxide (GO)-based materials were synthesized via a simple hydrothermal route, varying the titanium content in the tin dioxide matrix. Then, toluene and acetone gas sensing performances of...

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Autores principales: Pargoletti, Eleonora, Verga, Simone, Chiarello, Gian Luca, Longhi, Mariangela, Cerrato, Giuseppina, Giordana, Alessia, Cappelletti, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221561/
https://www.ncbi.nlm.nih.gov/pubmed/32326649
http://dx.doi.org/10.3390/nano10040761
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author Pargoletti, Eleonora
Verga, Simone
Chiarello, Gian Luca
Longhi, Mariangela
Cerrato, Giuseppina
Giordana, Alessia
Cappelletti, Giuseppe
author_facet Pargoletti, Eleonora
Verga, Simone
Chiarello, Gian Luca
Longhi, Mariangela
Cerrato, Giuseppina
Giordana, Alessia
Cappelletti, Giuseppe
author_sort Pargoletti, Eleonora
collection PubMed
description The major drawback of oxide-based sensors is the lack of selectivity. In this context, Sn(x)Ti(1−x)O(2)/graphene oxide (GO)-based materials were synthesized via a simple hydrothermal route, varying the titanium content in the tin dioxide matrix. Then, toluene and acetone gas sensing performances of the as-prepared sensors were systematically investigated. Specifically, by using 32:1 SnO(2)/GO and 32:1 TiO(2)/GO, a greater selectivity towards acetone analyte, also at room temperature, was obtained even at ppb level. However, solid solutions possessing a higher content of tin relative to titanium (as 32:1 Sn(0.55)Ti(0.45)O(2)/GO) exhibited higher selectivity towards bigger and non-polar molecules (such as toluene) at 350 °C, rather than acetone. A deep experimental investigation of structural (XRPD and Raman), morphological (SEM, TEM, BET surface area and pores volume) and surface (XPS analyses) properties allowed us to give a feasible explanation of the different selectivity. Moreover, by exploiting the UV light, the lowest operating temperature to obtain a significant and reliable signal was 250 °C, keeping the greater selectivity to the toluene analyte. Hence, the feasibility of tuning the chemical selectivity by engineering the relative amount of SnO(2) and TiO(2) is a promising feature that may guide the future development of miniaturized chemoresistors.
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spelling pubmed-72215612020-05-22 Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors Pargoletti, Eleonora Verga, Simone Chiarello, Gian Luca Longhi, Mariangela Cerrato, Giuseppina Giordana, Alessia Cappelletti, Giuseppe Nanomaterials (Basel) Article The major drawback of oxide-based sensors is the lack of selectivity. In this context, Sn(x)Ti(1−x)O(2)/graphene oxide (GO)-based materials were synthesized via a simple hydrothermal route, varying the titanium content in the tin dioxide matrix. Then, toluene and acetone gas sensing performances of the as-prepared sensors were systematically investigated. Specifically, by using 32:1 SnO(2)/GO and 32:1 TiO(2)/GO, a greater selectivity towards acetone analyte, also at room temperature, was obtained even at ppb level. However, solid solutions possessing a higher content of tin relative to titanium (as 32:1 Sn(0.55)Ti(0.45)O(2)/GO) exhibited higher selectivity towards bigger and non-polar molecules (such as toluene) at 350 °C, rather than acetone. A deep experimental investigation of structural (XRPD and Raman), morphological (SEM, TEM, BET surface area and pores volume) and surface (XPS analyses) properties allowed us to give a feasible explanation of the different selectivity. Moreover, by exploiting the UV light, the lowest operating temperature to obtain a significant and reliable signal was 250 °C, keeping the greater selectivity to the toluene analyte. Hence, the feasibility of tuning the chemical selectivity by engineering the relative amount of SnO(2) and TiO(2) is a promising feature that may guide the future development of miniaturized chemoresistors. MDPI 2020-04-15 /pmc/articles/PMC7221561/ /pubmed/32326649 http://dx.doi.org/10.3390/nano10040761 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
Pargoletti, Eleonora
Verga, Simone
Chiarello, Gian Luca
Longhi, Mariangela
Cerrato, Giuseppina
Giordana, Alessia
Cappelletti, Giuseppe
Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors
title Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors
title_full Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors
title_fullStr Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors
title_full_unstemmed Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors
title_short Exploring Sn(x)Ti(1−x)O(2) Solid Solutions Grown onto Graphene Oxide (GO) as Selective Toluene Gas Sensors
title_sort exploring sn(x)ti(1−x)o(2) solid solutions grown onto graphene oxide (go) as selective toluene gas sensors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221561/
https://www.ncbi.nlm.nih.gov/pubmed/32326649
http://dx.doi.org/10.3390/nano10040761
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