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Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect

In this paper, a hollow-core negative curvature fiber (HC-NCF) with high birefringence is proposed for low refractive index (RI) sensing based on surface plasmon resonance effect. In the design, the cladding region of the HC-NCF is composed of only one ring of eight silica tubes, and two of them are...

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Autores principales: Qiu, Shi, Yuan, Jinhui, Zhou, Xian, Li, Feng, Wang, Qiwei, Qu, Yuwei, Yan, Binbin, Wu, Qiang, Wang, Kuiru, Sang, Xinzhu, Long, Keping, Yu, Chongxiu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7697069/
https://www.ncbi.nlm.nih.gov/pubmed/33207618
http://dx.doi.org/10.3390/s20226539
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author Qiu, Shi
Yuan, Jinhui
Zhou, Xian
Li, Feng
Wang, Qiwei
Qu, Yuwei
Yan, Binbin
Wu, Qiang
Wang, Kuiru
Sang, Xinzhu
Long, Keping
Yu, Chongxiu
author_facet Qiu, Shi
Yuan, Jinhui
Zhou, Xian
Li, Feng
Wang, Qiwei
Qu, Yuwei
Yan, Binbin
Wu, Qiang
Wang, Kuiru
Sang, Xinzhu
Long, Keping
Yu, Chongxiu
author_sort Qiu, Shi
collection PubMed
description In this paper, a hollow-core negative curvature fiber (HC-NCF) with high birefringence is proposed for low refractive index (RI) sensing based on surface plasmon resonance effect. In the design, the cladding region of the HC-NCF is composed of only one ring of eight silica tubes, and two of them are selectively filled with the gold wires. The influences of the gold wires-filled HC-NCF structure parameters on the propagation characteristic are investigated by the finite element method. Moreover, the sensing performances in the low RI range of 1.20–1.34 are evaluated by the traditional confinement loss method and novel birefringence analysis method, respectively. The simulation results show that for the confinement loss method, the obtained maximum sensitivity, resolution, and figure of merit of the gold wires-filled HC-NCF-based sensor are −5700 nm/RIU, 2.63 × 10(−5) RIU, and 317 RIU(−1), respectively. For the birefringence analysis method, the obtained maximum sensitivity, resolution, and birefringence of the gold wires-filled HC-NCF-based sensor are −6100 nm/RIU, 2.56 × 10(−5) RIU, and 1.72 × 10(−3), respectively. It is believed that the proposed gold wires-filled HC-NCF-based low RI sensor has important applications in the fields of biochemistry and medicine.
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spelling pubmed-76970692020-11-29 Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect Qiu, Shi Yuan, Jinhui Zhou, Xian Li, Feng Wang, Qiwei Qu, Yuwei Yan, Binbin Wu, Qiang Wang, Kuiru Sang, Xinzhu Long, Keping Yu, Chongxiu Sensors (Basel) Article In this paper, a hollow-core negative curvature fiber (HC-NCF) with high birefringence is proposed for low refractive index (RI) sensing based on surface plasmon resonance effect. In the design, the cladding region of the HC-NCF is composed of only one ring of eight silica tubes, and two of them are selectively filled with the gold wires. The influences of the gold wires-filled HC-NCF structure parameters on the propagation characteristic are investigated by the finite element method. Moreover, the sensing performances in the low RI range of 1.20–1.34 are evaluated by the traditional confinement loss method and novel birefringence analysis method, respectively. The simulation results show that for the confinement loss method, the obtained maximum sensitivity, resolution, and figure of merit of the gold wires-filled HC-NCF-based sensor are −5700 nm/RIU, 2.63 × 10(−5) RIU, and 317 RIU(−1), respectively. For the birefringence analysis method, the obtained maximum sensitivity, resolution, and birefringence of the gold wires-filled HC-NCF-based sensor are −6100 nm/RIU, 2.56 × 10(−5) RIU, and 1.72 × 10(−3), respectively. It is believed that the proposed gold wires-filled HC-NCF-based low RI sensor has important applications in the fields of biochemistry and medicine. MDPI 2020-11-16 /pmc/articles/PMC7697069/ /pubmed/33207618 http://dx.doi.org/10.3390/s20226539 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Qiu, Shi
Yuan, Jinhui
Zhou, Xian
Li, Feng
Wang, Qiwei
Qu, Yuwei
Yan, Binbin
Wu, Qiang
Wang, Kuiru
Sang, Xinzhu
Long, Keping
Yu, Chongxiu
Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect
title Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect
title_full Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect
title_fullStr Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect
title_full_unstemmed Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect
title_short Hollow-Core Negative Curvature Fiber with High Birefringence for Low Refractive Index Sensing Based on Surface Plasmon Resonance Effect
title_sort hollow-core negative curvature fiber with high birefringence for low refractive index sensing based on surface plasmon resonance effect
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7697069/
https://www.ncbi.nlm.nih.gov/pubmed/33207618
http://dx.doi.org/10.3390/s20226539
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