Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature Sensing

New miniaturized sensors for biological and medical applications must be adapted to the measuring environments and they should provide a high measurement resolution to sense small changes. The Vernier effect is an effective way of magnifying the sensitivity of a device, allowing for higher resolutio...

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Main Authors: André D. Gomes, Martin Becker, Jan Dellith, Mohammad I. Zibaii, Hamid Latifi, Manfred Rothhardt, Hartmut Bartelt, Orlando Frazão
Format: Article
Language:English
Published: MDPI AG 2019-01-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/19/3/453
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spelling doaj-49924d29b92c454682cbb5be4b6fd8982020-11-24T23:05:14ZengMDPI AGSensors1424-82202019-01-0119345310.3390/s19030453s19030453Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature SensingAndré D. Gomes0Martin Becker1Jan Dellith2Mohammad I. Zibaii3Hamid Latifi4Manfred Rothhardt5Hartmut Bartelt6Orlando Frazão7Leibniz Institute of Photonic Technology (IPHT), Albert-Einstein-Strasse 9, 07745 Jena, GermanyLeibniz Institute of Photonic Technology (IPHT), Albert-Einstein-Strasse 9, 07745 Jena, GermanyLeibniz Institute of Photonic Technology (IPHT), Albert-Einstein-Strasse 9, 07745 Jena, GermanyLaser and Plasma Research Institute, Shahid Beheshti, Evan, Tehran 1983969411, IranLaser and Plasma Research Institute, Shahid Beheshti, Evan, Tehran 1983969411, IranLeibniz Institute of Photonic Technology (IPHT), Albert-Einstein-Strasse 9, 07745 Jena, GermanyLeibniz Institute of Photonic Technology (IPHT), Albert-Einstein-Strasse 9, 07745 Jena, GermanyINESC TEC and Department of Physics and Astronomy, Faculty of Sciences, University of Porto, Rua do Campo Alegre 687, 4169-007 Porto, PortugalNew miniaturized sensors for biological and medical applications must be adapted to the measuring environments and they should provide a high measurement resolution to sense small changes. The Vernier effect is an effective way of magnifying the sensitivity of a device, allowing for higher resolution sensing. We applied this concept to the development of a small-size optical fiber Fabry–Perot interferometer probe that presents more than 60-fold higher sensitivity to temperature than the normal Fabry–Perot interferometer without the Vernier effect. This enables the sensor to reach higher temperature resolutions. The silica Fabry–Perot interferometer is created by focused ion beam milling of the end of a tapered multimode fiber. Multiple Fabry–Perot interferometers with shifted frequencies are generated in the cavity due to the presence of multiple modes. The reflection spectrum shows two main components in the Fast Fourier transform that give rise to the Vernier effect. The superposition of these components presents an enhancement of sensitivity to temperature. The same effect is also obtained by monitoring the reflection spectrum node without any filtering. A temperature sensitivity of -654 pm/°C was obtained between 30 °C and 120 °C, with an experimental resolution of 0.14 °C. Stability measurements are also reported.https://www.mdpi.com/1424-8220/19/3/453optical fiber sensorFabry–Perot interferometertemperature sensingfocused ion beamVernier effect
collection DOAJ
language English
format Article
sources DOAJ
author André D. Gomes
Martin Becker
Jan Dellith
Mohammad I. Zibaii
Hamid Latifi
Manfred Rothhardt
Hartmut Bartelt
Orlando Frazão
spellingShingle André D. Gomes
Martin Becker
Jan Dellith
Mohammad I. Zibaii
Hamid Latifi
Manfred Rothhardt
Hartmut Bartelt
Orlando Frazão
Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature Sensing
Sensors
optical fiber sensor
Fabry–Perot interferometer
temperature sensing
focused ion beam
Vernier effect
author_facet André D. Gomes
Martin Becker
Jan Dellith
Mohammad I. Zibaii
Hamid Latifi
Manfred Rothhardt
Hartmut Bartelt
Orlando Frazão
author_sort André D. Gomes
title Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature Sensing
title_short Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature Sensing
title_full Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature Sensing
title_fullStr Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature Sensing
title_full_unstemmed Multimode Fabry–Perot Interferometer Probe Based on Vernier Effect for Enhanced Temperature Sensing
title_sort multimode fabry–perot interferometer probe based on vernier effect for enhanced temperature sensing
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-01-01
description New miniaturized sensors for biological and medical applications must be adapted to the measuring environments and they should provide a high measurement resolution to sense small changes. The Vernier effect is an effective way of magnifying the sensitivity of a device, allowing for higher resolution sensing. We applied this concept to the development of a small-size optical fiber Fabry–Perot interferometer probe that presents more than 60-fold higher sensitivity to temperature than the normal Fabry–Perot interferometer without the Vernier effect. This enables the sensor to reach higher temperature resolutions. The silica Fabry–Perot interferometer is created by focused ion beam milling of the end of a tapered multimode fiber. Multiple Fabry–Perot interferometers with shifted frequencies are generated in the cavity due to the presence of multiple modes. The reflection spectrum shows two main components in the Fast Fourier transform that give rise to the Vernier effect. The superposition of these components presents an enhancement of sensitivity to temperature. The same effect is also obtained by monitoring the reflection spectrum node without any filtering. A temperature sensitivity of -654 pm/°C was obtained between 30 °C and 120 °C, with an experimental resolution of 0.14 °C. Stability measurements are also reported.
topic optical fiber sensor
Fabry–Perot interferometer
temperature sensing
focused ion beam
Vernier effect
url https://www.mdpi.com/1424-8220/19/3/453
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