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Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing

A fiber speckle sensor (FSS) based on a tapered multimode fiber (TMMF) has been developed to measure liquid analyte refractive index (RI) in this work. By the lateral and axial offset of input light into TMMF, several high-order modes are excited in TMMF, and the speckle pattern is spatially modulat...

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Detalles Bibliográficos
Autores principales: Guo, Penglai, Liu, Huanhuan, Zhou, Zhitai, Hu, Jie, Wang, Yuntian, Peng, Xiaoling, Yuan, Xun, Shu, Yiqing, Zhang, Yingfang, Dang, Hong, Xu, Guizhen, Zhang, Aoyan, Xue, Chenlong, Hu, Jiaqi, Shao, Liyang, Chen, Jinna, Li, Jianqing, Shum, Perry Ping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10422477/
https://www.ncbi.nlm.nih.gov/pubmed/37571597
http://dx.doi.org/10.3390/s23156814
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author Guo, Penglai
Liu, Huanhuan
Zhou, Zhitai
Hu, Jie
Wang, Yuntian
Peng, Xiaoling
Yuan, Xun
Shu, Yiqing
Zhang, Yingfang
Dang, Hong
Xu, Guizhen
Zhang, Aoyan
Xue, Chenlong
Hu, Jiaqi
Shao, Liyang
Chen, Jinna
Li, Jianqing
Shum, Perry Ping
author_facet Guo, Penglai
Liu, Huanhuan
Zhou, Zhitai
Hu, Jie
Wang, Yuntian
Peng, Xiaoling
Yuan, Xun
Shu, Yiqing
Zhang, Yingfang
Dang, Hong
Xu, Guizhen
Zhang, Aoyan
Xue, Chenlong
Hu, Jiaqi
Shao, Liyang
Chen, Jinna
Li, Jianqing
Shum, Perry Ping
author_sort Guo, Penglai
collection PubMed
description A fiber speckle sensor (FSS) based on a tapered multimode fiber (TMMF) has been developed to measure liquid analyte refractive index (RI) in this work. By the lateral and axial offset of input light into TMMF, several high-order modes are excited in TMMF, and the speckle pattern is spatially modulated, which affects an asymmetrical speckle pattern with a random intensity distribution at the output of TMMF. When the TMMF is immersed in the liquid analyte with RI variation, it influences the guided modes, as well as the mode interference, in TMMF. A digital image correlations method with zero-mean normalized cross-correlation coefficient is explored to digitize the speckle image differences, analyzing the RI variation. It is found that the lateral- and axial-offsets-induced speckle sensor can enhance the RI sensitivity from 6.41 to 19.52 RIU(−1) compared to the one without offset. The developed TMMF speckle sensor shows an RI resolution of 5.84 × 10(−5) over a linear response range of 1.3164 to 1.3588 at 1550 nm. The experimental results indicate the FSS provides a simple, efficient, and economic approach to RI sensing, which exhibits an enormous potential in the image-based ocean-sensing application.
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spelling pubmed-104224772023-08-13 Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing Guo, Penglai Liu, Huanhuan Zhou, Zhitai Hu, Jie Wang, Yuntian Peng, Xiaoling Yuan, Xun Shu, Yiqing Zhang, Yingfang Dang, Hong Xu, Guizhen Zhang, Aoyan Xue, Chenlong Hu, Jiaqi Shao, Liyang Chen, Jinna Li, Jianqing Shum, Perry Ping Sensors (Basel) Article A fiber speckle sensor (FSS) based on a tapered multimode fiber (TMMF) has been developed to measure liquid analyte refractive index (RI) in this work. By the lateral and axial offset of input light into TMMF, several high-order modes are excited in TMMF, and the speckle pattern is spatially modulated, which affects an asymmetrical speckle pattern with a random intensity distribution at the output of TMMF. When the TMMF is immersed in the liquid analyte with RI variation, it influences the guided modes, as well as the mode interference, in TMMF. A digital image correlations method with zero-mean normalized cross-correlation coefficient is explored to digitize the speckle image differences, analyzing the RI variation. It is found that the lateral- and axial-offsets-induced speckle sensor can enhance the RI sensitivity from 6.41 to 19.52 RIU(−1) compared to the one without offset. The developed TMMF speckle sensor shows an RI resolution of 5.84 × 10(−5) over a linear response range of 1.3164 to 1.3588 at 1550 nm. The experimental results indicate the FSS provides a simple, efficient, and economic approach to RI sensing, which exhibits an enormous potential in the image-based ocean-sensing application. MDPI 2023-07-31 /pmc/articles/PMC10422477/ /pubmed/37571597 http://dx.doi.org/10.3390/s23156814 Text en © 2023 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
Guo, Penglai
Liu, Huanhuan
Zhou, Zhitai
Hu, Jie
Wang, Yuntian
Peng, Xiaoling
Yuan, Xun
Shu, Yiqing
Zhang, Yingfang
Dang, Hong
Xu, Guizhen
Zhang, Aoyan
Xue, Chenlong
Hu, Jiaqi
Shao, Liyang
Chen, Jinna
Li, Jianqing
Shum, Perry Ping
Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing
title Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing
title_full Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing
title_fullStr Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing
title_full_unstemmed Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing
title_short Spatially Modulated Fiber Speckle for High-Sensitivity Refractive Index Sensing
title_sort spatially modulated fiber speckle for high-sensitivity refractive index sensing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10422477/
https://www.ncbi.nlm.nih.gov/pubmed/37571597
http://dx.doi.org/10.3390/s23156814
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