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Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE)

Background: Gas sensors are very important in several fields like gas monitoring, safety and environmental applications. In this approach, a new gas sensing concept is investigated which combines the powerful adsorption probability of metal oxide conductive sensors (MOS) with an optical ellipsometri...

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Autores principales: Fischer, Daniel, Hertwig, Andreas, Beck, Uwe, Lohse, Volkmar, Negendank, Detlef, Kormunda, Martin, Esser, Norbert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Beilstein-Institut 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5355906/
https://www.ncbi.nlm.nih.gov/pubmed/28382241
http://dx.doi.org/10.3762/bjnano.8.56
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author Fischer, Daniel
Hertwig, Andreas
Beck, Uwe
Lohse, Volkmar
Negendank, Detlef
Kormunda, Martin
Esser, Norbert
author_facet Fischer, Daniel
Hertwig, Andreas
Beck, Uwe
Lohse, Volkmar
Negendank, Detlef
Kormunda, Martin
Esser, Norbert
author_sort Fischer, Daniel
collection PubMed
description Background: Gas sensors are very important in several fields like gas monitoring, safety and environmental applications. In this approach, a new gas sensing concept is investigated which combines the powerful adsorption probability of metal oxide conductive sensors (MOS) with an optical ellipsometric readout. This concept shows promising results to solve the problems of cross sensitivity of the MOS concept. Results: Undoped tin oxide (SnO(x)) and iron doped tin oxide (Fe:SnO(x)) thin add-on films were prepared by magnetron sputtering on the top of the actual surface plasmon resonance (SPR) sensing gold layer. The films were tested for their sensitivity to several gas species in the surface plasmon resonance enhanced (SPREE) gas measurement. It was found that the undoped tin oxide (SnO(x)) shows higher sensitivities to propane (C(3)H(8)) then to carbon monoxide (CO). By using Fe:SnO(x), this relation is inverted. This behavior was explained by a change of the amount of binding sites for CO in the layer due to this iron doping. For hydrogen (H(2)) no such relation was found but the sensing ability was identical for both layer materials. This observation was related to a different sensing mechanism for H(2) which is driven by the diffusion into the layer instead of adsorption on the surface. Conclusion: The gas sensing selectivity can be enhanced by tuning the properties of the thin film overcoating. A relation of the binding sites in the doped and undoped SnO(x) films and the gas sensing abilities for CO and C(3)H(8) was found. This could open the path for optimized gas sensing devices with different coated SPREE sensors.
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spelling pubmed-53559062017-04-05 Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE) Fischer, Daniel Hertwig, Andreas Beck, Uwe Lohse, Volkmar Negendank, Detlef Kormunda, Martin Esser, Norbert Beilstein J Nanotechnol Full Research Paper Background: Gas sensors are very important in several fields like gas monitoring, safety and environmental applications. In this approach, a new gas sensing concept is investigated which combines the powerful adsorption probability of metal oxide conductive sensors (MOS) with an optical ellipsometric readout. This concept shows promising results to solve the problems of cross sensitivity of the MOS concept. Results: Undoped tin oxide (SnO(x)) and iron doped tin oxide (Fe:SnO(x)) thin add-on films were prepared by magnetron sputtering on the top of the actual surface plasmon resonance (SPR) sensing gold layer. The films were tested for their sensitivity to several gas species in the surface plasmon resonance enhanced (SPREE) gas measurement. It was found that the undoped tin oxide (SnO(x)) shows higher sensitivities to propane (C(3)H(8)) then to carbon monoxide (CO). By using Fe:SnO(x), this relation is inverted. This behavior was explained by a change of the amount of binding sites for CO in the layer due to this iron doping. For hydrogen (H(2)) no such relation was found but the sensing ability was identical for both layer materials. This observation was related to a different sensing mechanism for H(2) which is driven by the diffusion into the layer instead of adsorption on the surface. Conclusion: The gas sensing selectivity can be enhanced by tuning the properties of the thin film overcoating. A relation of the binding sites in the doped and undoped SnO(x) films and the gas sensing abilities for CO and C(3)H(8) was found. This could open the path for optimized gas sensing devices with different coated SPREE sensors. Beilstein-Institut 2017-02-28 /pmc/articles/PMC5355906/ /pubmed/28382241 http://dx.doi.org/10.3762/bjnano.8.56 Text en Copyright © 2017, Fischer et al. https://creativecommons.org/licenses/by/4.0https://www.beilstein-journals.org/bjnano/termsThis is an Open Access article under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. The license is subject to the Beilstein Journal of Nanotechnology terms and conditions: (https://www.beilstein-journals.org/bjnano/terms)
spellingShingle Full Research Paper
Fischer, Daniel
Hertwig, Andreas
Beck, Uwe
Lohse, Volkmar
Negendank, Detlef
Kormunda, Martin
Esser, Norbert
Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE)
title Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE)
title_full Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE)
title_fullStr Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE)
title_full_unstemmed Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE)
title_short Thin SnO(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (SPREE)
title_sort thin sno(x) films for surface plasmon resonance enhanced ellipsometric gas sensing (spree)
topic Full Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5355906/
https://www.ncbi.nlm.nih.gov/pubmed/28382241
http://dx.doi.org/10.3762/bjnano.8.56
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