Cargando…

Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices

[Image: see text] The development of high-performing sensing materials, able to detect ppb-trace concentrations of volatile organic compounds (VOCs) at low temperatures, is required for the development of next-generation miniaturized wireless sensors. Here, we present the engineering of selective ro...

Descripción completa

Detalles Bibliográficos
Autores principales: Pargoletti, Eleonora, Hossain, Umme H., Di Bernardo, Iolanda, Chen, Hongjun, Tran-Phu, Thanh, Chiarello, Gian Luca, Lipton-Duffin, Josh, Pifferi, Valentina, Tricoli, Antonio, Cappelletti, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8009473/
https://www.ncbi.nlm.nih.gov/pubmed/32696650
http://dx.doi.org/10.1021/acsami.0c09178
_version_ 1783672883917094912
author Pargoletti, Eleonora
Hossain, Umme H.
Di Bernardo, Iolanda
Chen, Hongjun
Tran-Phu, Thanh
Chiarello, Gian Luca
Lipton-Duffin, Josh
Pifferi, Valentina
Tricoli, Antonio
Cappelletti, Giuseppe
author_facet Pargoletti, Eleonora
Hossain, Umme H.
Di Bernardo, Iolanda
Chen, Hongjun
Tran-Phu, Thanh
Chiarello, Gian Luca
Lipton-Duffin, Josh
Pifferi, Valentina
Tricoli, Antonio
Cappelletti, Giuseppe
author_sort Pargoletti, Eleonora
collection PubMed
description [Image: see text] The development of high-performing sensing materials, able to detect ppb-trace concentrations of volatile organic compounds (VOCs) at low temperatures, is required for the development of next-generation miniaturized wireless sensors. Here, we present the engineering of selective room-temperature (RT) chemical sensors, comprising highly porous tin dioxide (SnO(2))–graphene oxide (GO) nanoheterojunction layouts. The optoelectronic and chemical properties of these highly porous (>90%) p–n heterojunctions were systematically investigated in terms of composition and morphologies. Optimized SnO(2)–GO layouts demonstrate significant potential as both visible–blind photodetectors and selective RT chemical sensors. Notably, a low GO content results in an excellent UV light responsivity (400 A W(–1)), with short rise and decay times, and RT high chemical sensitivity with selective detection of VOCs such as ethanol down to 100 ppb. In contrast, a high concentration of GO drastically decreases the RT response to ethanol and results in good selectivity to ethylbenzene. The feasibility of tuning the chemical selectivity of sensor response by engineering the relative amount of GO and SnO(2) is a promising feature that may guide the future development of miniaturized solid-state gas sensors. Furthermore, the excellent optoelectronic properties of these SnO(2)–GO nanoheterojunctions may find applications in various other areas such as optoelectronic devices and (photo)electrocatalysis.
format Online
Article
Text
id pubmed-8009473
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-80094732021-03-31 Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices Pargoletti, Eleonora Hossain, Umme H. Di Bernardo, Iolanda Chen, Hongjun Tran-Phu, Thanh Chiarello, Gian Luca Lipton-Duffin, Josh Pifferi, Valentina Tricoli, Antonio Cappelletti, Giuseppe ACS Appl Mater Interfaces [Image: see text] The development of high-performing sensing materials, able to detect ppb-trace concentrations of volatile organic compounds (VOCs) at low temperatures, is required for the development of next-generation miniaturized wireless sensors. Here, we present the engineering of selective room-temperature (RT) chemical sensors, comprising highly porous tin dioxide (SnO(2))–graphene oxide (GO) nanoheterojunction layouts. The optoelectronic and chemical properties of these highly porous (>90%) p–n heterojunctions were systematically investigated in terms of composition and morphologies. Optimized SnO(2)–GO layouts demonstrate significant potential as both visible–blind photodetectors and selective RT chemical sensors. Notably, a low GO content results in an excellent UV light responsivity (400 A W(–1)), with short rise and decay times, and RT high chemical sensitivity with selective detection of VOCs such as ethanol down to 100 ppb. In contrast, a high concentration of GO drastically decreases the RT response to ethanol and results in good selectivity to ethylbenzene. The feasibility of tuning the chemical selectivity of sensor response by engineering the relative amount of GO and SnO(2) is a promising feature that may guide the future development of miniaturized solid-state gas sensors. Furthermore, the excellent optoelectronic properties of these SnO(2)–GO nanoheterojunctions may find applications in various other areas such as optoelectronic devices and (photo)electrocatalysis. American Chemical Society 2020-07-22 2020-09-02 /pmc/articles/PMC8009473/ /pubmed/32696650 http://dx.doi.org/10.1021/acsami.0c09178 Text en Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Pargoletti, Eleonora
Hossain, Umme H.
Di Bernardo, Iolanda
Chen, Hongjun
Tran-Phu, Thanh
Chiarello, Gian Luca
Lipton-Duffin, Josh
Pifferi, Valentina
Tricoli, Antonio
Cappelletti, Giuseppe
Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices
title Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices
title_full Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices
title_fullStr Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices
title_full_unstemmed Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices
title_short Engineering of SnO(2)–Graphene Oxide Nanoheterojunctions for Selective Room-Temperature Chemical Sensing and Optoelectronic Devices
title_sort engineering of sno(2)–graphene oxide nanoheterojunctions for selective room-temperature chemical sensing and optoelectronic devices
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8009473/
https://www.ncbi.nlm.nih.gov/pubmed/32696650
http://dx.doi.org/10.1021/acsami.0c09178
work_keys_str_mv AT pargolettieleonora engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT hossainummeh engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT dibernardoiolanda engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT chenhongjun engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT tranphuthanh engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT chiarellogianluca engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT liptonduffinjosh engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT pifferivalentina engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT tricoliantonio engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices
AT cappellettigiuseppe engineeringofsno2grapheneoxidenanoheterojunctionsforselectiveroomtemperaturechemicalsensingandoptoelectronicdevices