Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber

A new temperature sensor based on asymmetry in dual circular core photonic crystal fiber (ADCPCF) is proposed where both the cores infiltrate by chloroform. To analyze the temperature dependent propagation characteristics, the thermo-optic coefficient of chloroform and silica is used. The asymmetry...

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Main Authors: Md. Mahbub Hossain, Rajib Mandal, Md. Ziual Amin, Himadri Shekhar Mondal, Md. Ekhlasur Rahaman
Format: Article
Language:English
Published: Samara National Research University 2018-09-01
Series:Journal of Biomedical Photonics & Engineering
Subjects:
Online Access:http://jbpe.ssau.ru/index.php/JBPE/article/view/3294
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spelling doaj-899e737e49754e4fb12cf78de14649e52020-11-25T02:14:08ZengSamara National Research UniversityJournal of Biomedical Photonics & Engineering2411-28442018-09-014310.18287/JBPE18.04.0303022978Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiberMd. Mahbub Hossain0Rajib Mandal1Md. Ziual Amin2Himadri Shekhar Mondal3Md. Ekhlasur Rahaman4Electronics and Communication Engineering Discipline, Khulna University, BangladeshElectronics and Communication Engineering Discipline, Khulna University, BangladeshElectronics and Communication Engineering Discipline, Khulna University, Bangladesh; MQ Photonics, School of Engineering, Macquarie University, New South Wales, AustraliaElectronics and Communication Engineering Discipline, Khulna University, BangladeshElectronics and Communication Engineering Discipline, Khulna University, BangladeshA new temperature sensor based on asymmetry in dual circular core photonic crystal fiber (ADCPCF) is proposed where both the cores infiltrate by chloroform. To analyze the temperature dependent propagation characteristics, the thermo-optic coefficient of chloroform and silica is used. The asymmetry of the dual-core is confirmed by using the core radius of 1.615 and 1.45 µm, respectively. In the proposed design, the essential optical properties such as effective refractive index difference (birefringence), coupling length, and transmission spectra are determined by employing the finite element method (FEM) with the perfectly matched layer (PML). The effective refractive index of the chloroform varies with temperature within a certain range. Moreover, with the increase of every 1 °C temperature the effective index difference enhances to almost 4%. Also, with the reduction of every 100 nm wavelength the birefringence decrease to 0.125×10-3 and 0.092×10-3 for 35 and 30 °C temperature, respectively. The Numeric analysis shows the maximum sensitivity of 49.80 nm/°C at 1.61 mm fiber length for 2.9 µm lattice pitch with 2.25 µm air-hole diameter. Furthermore, every 1 °C temperature increment, the proposed ADCPCF exhibits approximately 16% increases of sensitivity than the existing result. In addition, the proposed ADCPCF reveals that the guiding properties like coupling length, birefringence, and transmission spectra are wavelength and temperature reliance.http://jbpe.ssau.ru/index.php/JBPE/article/view/3294Asymmetric dual circular core photonic crystal fiber (ADCPCF)BirefringenceChloroformSensitivityTemperature Sensor
collection DOAJ
language English
format Article
sources DOAJ
author Md. Mahbub Hossain
Rajib Mandal
Md. Ziual Amin
Himadri Shekhar Mondal
Md. Ekhlasur Rahaman
spellingShingle Md. Mahbub Hossain
Rajib Mandal
Md. Ziual Amin
Himadri Shekhar Mondal
Md. Ekhlasur Rahaman
Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
Journal of Biomedical Photonics & Engineering
Asymmetric dual circular core photonic crystal fiber (ADCPCF)
Birefringence
Chloroform
Sensitivity
Temperature Sensor
author_facet Md. Mahbub Hossain
Rajib Mandal
Md. Ziual Amin
Himadri Shekhar Mondal
Md. Ekhlasur Rahaman
author_sort Md. Mahbub Hossain
title Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
title_short Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
title_full Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
title_fullStr Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
title_full_unstemmed Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
title_sort chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
publisher Samara National Research University
series Journal of Biomedical Photonics & Engineering
issn 2411-2844
publishDate 2018-09-01
description A new temperature sensor based on asymmetry in dual circular core photonic crystal fiber (ADCPCF) is proposed where both the cores infiltrate by chloroform. To analyze the temperature dependent propagation characteristics, the thermo-optic coefficient of chloroform and silica is used. The asymmetry of the dual-core is confirmed by using the core radius of 1.615 and 1.45 µm, respectively. In the proposed design, the essential optical properties such as effective refractive index difference (birefringence), coupling length, and transmission spectra are determined by employing the finite element method (FEM) with the perfectly matched layer (PML). The effective refractive index of the chloroform varies with temperature within a certain range. Moreover, with the increase of every 1 °C temperature the effective index difference enhances to almost 4%. Also, with the reduction of every 100 nm wavelength the birefringence decrease to 0.125×10-3 and 0.092×10-3 for 35 and 30 °C temperature, respectively. The Numeric analysis shows the maximum sensitivity of 49.80 nm/°C at 1.61 mm fiber length for 2.9 µm lattice pitch with 2.25 µm air-hole diameter. Furthermore, every 1 °C temperature increment, the proposed ADCPCF exhibits approximately 16% increases of sensitivity than the existing result. In addition, the proposed ADCPCF reveals that the guiding properties like coupling length, birefringence, and transmission spectra are wavelength and temperature reliance.
topic Asymmetric dual circular core photonic crystal fiber (ADCPCF)
Birefringence
Chloroform
Sensitivity
Temperature Sensor
url http://jbpe.ssau.ru/index.php/JBPE/article/view/3294
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