cris.boxmetadata.label.title
Silver enhances hematite nanoparticles based ethanol sensor response and selectivity at room temperature
cris.boxmetadata.label.dateissued
02 browse.startsWith.months.january 2021
cris.boxmetadata.label.accesslevel
open access
cris.boxmetadata.label.resourcetype
journal article
cris.boxmetadata.label.authors
Garcia-Osorio D.
Hidalgo-Falla P.
Peres H.E.M.
Gonçalves J.M.
Araki K.
Garcia-Segura S.
PICASSO ESCOBAR, GINO ITALO
cris.boxmetadata.label.publisher
Multidisciplinary Digital Publishing Institute (MDPI)
cris.boxmetadata.label.abstract
Gas sensors are fundamental for continuous online monitoring of volatile organic com-pounds. Gas sensors based on semiconductor materials have demonstrated to be highly competitive, but are generally made of expensive materials and operate at high temperatures, which are draw-backs of these technologies. Herein is described a novel ethanol sensor for room temperature (25◦C) measurements based on hematite (α-Fe2O3 )/silver nanoparticles. The AgNPs were shown to increase the oxide semiconductor charge carrier density, but especially to enhance the ethanol adsorption rate boosting the selectivity and sensitivity, thus allowing quantification of ethanol vapor in 2–35 mg L−1 range with an excellent linear relationship. In addition, the α-Fe2O3/Ag 3.0 wt% nanocomposite is cheap, and easy to make and process, imparting high perspectives for real applications in breath analyzers and/or sensors in food and beverage industries. This work contributes to the advance of gas sensing at ambient temperature as a competitive alternative for quantification of conventional volatile organic compounds.
cris.boxmetadata.label.citationstartpage
1
cris.boxmetadata.label.citationendpage
13
cris.boxmetadata.label.volume
21
cris.boxmetadata.label.number
2
cris.boxmetadata.label.language
English
cris.boxmetadata.label.ocdeknowledgeArea
Química inorgánica, Química nuclear Nano-tecnología
cris.boxmetadata.label.doi
cris.boxmetadata.label.scopusidentifier
2-s2.0-85099206012
cris.boxmetadata.label.pubmedidentifier
cris.boxmetadata.label.source
Sensors (Switzerland)
cris.boxmetadata.label.containerissn
14248220
cris.boxmetadata.label.sourcefunding
cris.boxmetadata.label.sourceproject
cris.boxmetadata.label.sponsor
Funding: This work was partially supported by FONDECYT (grant 237-2015.FONDECYT). The authors also are grateful to the Brazilian agencies “Conselho Nacional de Desenvolvimento Científico e Tecnológico” (CNPq) and “Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP) for the financial support (CNPq 401581/2016-0, FAPESP 2013/24725-4) and fellowships (JMG CNPq 141853/2015-8, FAPESP 2018/16896-7). D. Garcia-Osorio acknowledges CNPq for the fellowship (CNPq 131863/2016-9). The authors are also grateful to Brazilian Nanotechnology National Laboratory—LNNano/CNPEM (Campinas, Brazil) by the use of the STEM facilities. This work was partially supported by FONDECYT (grant 237-2015.FONDECYT). The authors also are grateful to the Brazilian agencies ?Conselho Nacional de Desenvolvimento Cient?fico e Tecnol?gico? (CNPq) and ?Funda??o de Amparo ? Pesquisa do Estado de S?o Paulo (FAPESP) for the financial support (CNPq 401581/2016-0, FAPESP 2013/24725-4) and fellowships (JMG CNPq 141853/2015-8, FAPESP 2018/16896-7). D. Garcia-Osorio acknowledges CNPq for the fellow-ship (CNPq 131863/2016-9). The authors are also grateful to Brazilian Nanotechnology National Laboratory?LNNano/CNPEM (Campinas, Brazil) by the use of the STEM facilities.
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