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Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules

Cholesteric liquid crystals (CLCs) can be applied to various physical and chemical sensors because their alignment structures are changed by external stimuli. Here, we propose a CLC device fabricated by vertically forming the helical axis of the CLC between the cross-sections of two optical fiber fe...

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Autores principales: Ahn, Soyeon, Lee, Gi Hyen, Lee, Jun-Yong, Kim, Youngseo, Kim, Min Su, Pagidi, Srinivas, Choi, Byeong Kwon, Kim, Ji Su, Kim, Jong-Hyun, Jeon, Min Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370840/
https://www.ncbi.nlm.nih.gov/pubmed/35957311
http://dx.doi.org/10.3390/s22155752
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author Ahn, Soyeon
Lee, Gi Hyen
Lee, Jun-Yong
Kim, Youngseo
Kim, Min Su
Pagidi, Srinivas
Choi, Byeong Kwon
Kim, Ji Su
Kim, Jong-Hyun
Jeon, Min Yong
author_facet Ahn, Soyeon
Lee, Gi Hyen
Lee, Jun-Yong
Kim, Youngseo
Kim, Min Su
Pagidi, Srinivas
Choi, Byeong Kwon
Kim, Ji Su
Kim, Jong-Hyun
Jeon, Min Yong
author_sort Ahn, Soyeon
collection PubMed
description Cholesteric liquid crystals (CLCs) can be applied to various physical and chemical sensors because their alignment structures are changed by external stimuli. Here, we propose a CLC device fabricated by vertically forming the helical axis of the CLC between the cross-sections of two optical fiber ferrules. An optical fiber temperature sensor was successfully implemented using the proposed optical fiber ferrule-based CLC device. A wideband wavelength-swept laser with a center wavelength of 1073 nm and scanning range of 220 nm was used as a light source to measure the variations in the reflection spectrum band according to the temperature change in the CLC cell. The wavelength variation of the reflection spectrum band according to the temperature applied to the CLC cell was reversible and changed linearly with a change in the temperature, and the long-wavelength edge variation rate according to the temperature change was −5.0 nm/°C. Additionally, as the temperature applied to the CLC cell increased, the reflection spectrum bandwidth gradually decreased; the reflection spectrum bandwidth varied at a rate of −1.89 nm/°C. The variations in the refractive indices with temperature were calculated from the band wavelengths of the reflection spectrum. The pitch at each temperature was calculated based on the refractive indices and it gradually decreased as the temperature increased.
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spelling pubmed-93708402022-08-12 Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules Ahn, Soyeon Lee, Gi Hyen Lee, Jun-Yong Kim, Youngseo Kim, Min Su Pagidi, Srinivas Choi, Byeong Kwon Kim, Ji Su Kim, Jong-Hyun Jeon, Min Yong Sensors (Basel) Article Cholesteric liquid crystals (CLCs) can be applied to various physical and chemical sensors because their alignment structures are changed by external stimuli. Here, we propose a CLC device fabricated by vertically forming the helical axis of the CLC between the cross-sections of two optical fiber ferrules. An optical fiber temperature sensor was successfully implemented using the proposed optical fiber ferrule-based CLC device. A wideband wavelength-swept laser with a center wavelength of 1073 nm and scanning range of 220 nm was used as a light source to measure the variations in the reflection spectrum band according to the temperature change in the CLC cell. The wavelength variation of the reflection spectrum band according to the temperature applied to the CLC cell was reversible and changed linearly with a change in the temperature, and the long-wavelength edge variation rate according to the temperature change was −5.0 nm/°C. Additionally, as the temperature applied to the CLC cell increased, the reflection spectrum bandwidth gradually decreased; the reflection spectrum bandwidth varied at a rate of −1.89 nm/°C. The variations in the refractive indices with temperature were calculated from the band wavelengths of the reflection spectrum. The pitch at each temperature was calculated based on the refractive indices and it gradually decreased as the temperature increased. MDPI 2022-08-01 /pmc/articles/PMC9370840/ /pubmed/35957311 http://dx.doi.org/10.3390/s22155752 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ahn, Soyeon
Lee, Gi Hyen
Lee, Jun-Yong
Kim, Youngseo
Kim, Min Su
Pagidi, Srinivas
Choi, Byeong Kwon
Kim, Ji Su
Kim, Jong-Hyun
Jeon, Min Yong
Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules
title Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules
title_full Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules
title_fullStr Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules
title_full_unstemmed Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules
title_short Fiber-Optic Temperature Sensor Using Cholesteric Liquid Crystals on the Optical Fiber Ferrules
title_sort fiber-optic temperature sensor using cholesteric liquid crystals on the optical fiber ferrules
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370840/
https://www.ncbi.nlm.nih.gov/pubmed/35957311
http://dx.doi.org/10.3390/s22155752
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