| Literature DB >> 28382241 |
Daniel Fischer1, Andreas Hertwig1, Uwe Beck1, Volkmar Lohse2, Detlef Negendank2, Martin Kormunda3, Norbert Esser4.
Abstract
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.Entities:
Keywords: doped tin oxide; ellipsometry; gas sensing; surface plasmon resonance; thin films; transparent conductive oxides
Year: 2017 PMID: 28382241 PMCID: PMC5355906 DOI: 10.3762/bjnano.8.56
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Scheme of the SPREE gas sensing device.
Figure 2Measured data of Ψ and Δ for a BK7 glass prism with a 45 nm Au coating and a 5 nm SnOx add-on layer.
Figure 3Δ signal depending on different air pressure values at an AOI of 47.9°. The pressure was changed every 50 measurement points by 0.1 bar up to a pressure of 1.0 bar. Then the pressure was reduced to 0.5 and 0.1 bar.
Figure 4Changes in the Ψ and Δ angle spectrum due to changing gas atmosphere. Black / solid: synthetic air. Red/dashed 1000 ppm CO in synthetic air.
Figure 5Comparison of the change in Ψ and Δ at an AOI of 44.5° after exposure for different concentrations of CO on a Fe:SnOx coating. The standard deviations σ for ΔΨ and ΔΔ are 0.04° and 0.016°, respectively.
Figure 6Gas measurement of C3H8 (black rectangle), CO (blue triangle) and H2 (red dots) with SPREE with an undoped SnOx layer at an AOI of 45.3° (left). Linearity analysis of the ΔΔ response to the gas concentration (right).
Figure 7Gas measurement of C3H8 (black rectangle), CO (blue triangle) and H2 (red dots) with SPREE at an AOI of 44.5° with an Fe:SnOx layer (left). Linearity analysis of the ΔΔ response to the gas concentration (right).