Magnetic field detection using a highly sensitive FBG probe

A partially unclad fiber Bragg grating (FBG) coated with Fe3O4 nanoparticles as a magnetic field sensor is experimentally demonstrated. A series of six FBGs reflecting different wavelengths at an efficient length of 30 mm are fixed on the top and outside of a cylindrical glass chamber. The chamber i...

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Main Authors: Samavati, Alireza, Samavati, Zahra, Ismail, Ahmad Fauzi, Yahya, Noorhana, Abu Bakar, Mohamad Aizat, Othman, Mohd. Hafiz Dzarfan, A. Rahman, Mukhlis, Khong, Nee Koo, Osman, Siti Sarah
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Published: Institute of Physics Publishing 2020
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Online Access:http://eprints.utm.my/id/eprint/90965/
http://dx.doi.org/10.1088/1402-4896/ab51ed
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spelling my.utm.909652021-05-31T13:28:49Z http://eprints.utm.my/id/eprint/90965/ Magnetic field detection using a highly sensitive FBG probe Samavati, Alireza Samavati, Zahra Ismail, Ahmad Fauzi Yahya, Noorhana Abu Bakar, Mohamad Aizat Othman, Mohd. Hafiz Dzarfan A. Rahman, Mukhlis Khong, Nee Koo Osman, Siti Sarah TP Chemical technology A partially unclad fiber Bragg grating (FBG) coated with Fe3O4 nanoparticles as a magnetic field sensor is experimentally demonstrated. A series of six FBGs reflecting different wavelengths at an efficient length of 30 mm are fixed on the top and outside of a cylindrical glass chamber. The chamber is equipped with a solenoid that acts as a magnetic field generator and is filled up with air, saline solution, and crude oil separately to detect the changes in the magnetic field. The magnetic-hysteresis loops confirm the super-paramagnetic properties of the synthesized Fe3O4 nanoparticles with size smaller than 20 nm. The sensor response time of ∼21 s confirms the high reliability and repeatability of the sensing scheme. The change in the magnetic field strength depended from FBG-solenoid distance, propagating at different media and function generator frequency leads to shift in the reflected wavelength of each single FBG's accordingly. The magnetic field strength outside the solenoid obeys the inverse-cubic law, and the decrease in the wavelength shift with an increase in the FBG-solenoid distance is in excellent agreement with the Biot-Savart law. The shift is caused by the interference of different propagating modes that are reflected from the core-cladding and cladding-magnetite layer interfaces; these modes have different phases because of the changes in the refractive index of the magnetite layer resulting from the change in the magnetic field. Our precise fabrication of the FBG probe with a maximum sensitivity of ∼11 000 pm mT-1 and the proposed design of experiment may be appropriate for detecting small changes in magnetic fields in the oil industry. Institute of Physics Publishing 2020 Article PeerReviewed Samavati, Alireza and Samavati, Zahra and Ismail, Ahmad Fauzi and Yahya, Noorhana and Abu Bakar, Mohamad Aizat and Othman, Mohd. Hafiz Dzarfan and A. Rahman, Mukhlis and Khong, Nee Koo and Osman, Siti Sarah (2020) Magnetic field detection using a highly sensitive FBG probe. Physica Scripta, 95 (3). 035509-035509. ISSN 0031-8949 http://dx.doi.org/10.1088/1402-4896/ab51ed
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Samavati, Alireza
Samavati, Zahra
Ismail, Ahmad Fauzi
Yahya, Noorhana
Abu Bakar, Mohamad Aizat
Othman, Mohd. Hafiz Dzarfan
A. Rahman, Mukhlis
Khong, Nee Koo
Osman, Siti Sarah
Magnetic field detection using a highly sensitive FBG probe
description A partially unclad fiber Bragg grating (FBG) coated with Fe3O4 nanoparticles as a magnetic field sensor is experimentally demonstrated. A series of six FBGs reflecting different wavelengths at an efficient length of 30 mm are fixed on the top and outside of a cylindrical glass chamber. The chamber is equipped with a solenoid that acts as a magnetic field generator and is filled up with air, saline solution, and crude oil separately to detect the changes in the magnetic field. The magnetic-hysteresis loops confirm the super-paramagnetic properties of the synthesized Fe3O4 nanoparticles with size smaller than 20 nm. The sensor response time of ∼21 s confirms the high reliability and repeatability of the sensing scheme. The change in the magnetic field strength depended from FBG-solenoid distance, propagating at different media and function generator frequency leads to shift in the reflected wavelength of each single FBG's accordingly. The magnetic field strength outside the solenoid obeys the inverse-cubic law, and the decrease in the wavelength shift with an increase in the FBG-solenoid distance is in excellent agreement with the Biot-Savart law. The shift is caused by the interference of different propagating modes that are reflected from the core-cladding and cladding-magnetite layer interfaces; these modes have different phases because of the changes in the refractive index of the magnetite layer resulting from the change in the magnetic field. Our precise fabrication of the FBG probe with a maximum sensitivity of ∼11 000 pm mT-1 and the proposed design of experiment may be appropriate for detecting small changes in magnetic fields in the oil industry.
format Article
author Samavati, Alireza
Samavati, Zahra
Ismail, Ahmad Fauzi
Yahya, Noorhana
Abu Bakar, Mohamad Aizat
Othman, Mohd. Hafiz Dzarfan
A. Rahman, Mukhlis
Khong, Nee Koo
Osman, Siti Sarah
author_facet Samavati, Alireza
Samavati, Zahra
Ismail, Ahmad Fauzi
Yahya, Noorhana
Abu Bakar, Mohamad Aizat
Othman, Mohd. Hafiz Dzarfan
A. Rahman, Mukhlis
Khong, Nee Koo
Osman, Siti Sarah
author_sort Samavati, Alireza
title Magnetic field detection using a highly sensitive FBG probe
title_short Magnetic field detection using a highly sensitive FBG probe
title_full Magnetic field detection using a highly sensitive FBG probe
title_fullStr Magnetic field detection using a highly sensitive FBG probe
title_full_unstemmed Magnetic field detection using a highly sensitive FBG probe
title_sort magnetic field detection using a highly sensitive fbg probe
publisher Institute of Physics Publishing
publishDate 2020
url http://eprints.utm.my/id/eprint/90965/
http://dx.doi.org/10.1088/1402-4896/ab51ed
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score 13.201949