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Chebyshev apodized fiber Bragg gratings

In this paper, a new apodized fiber Bragg grating (FBG) structure, the Chebyshev apodization, is proposed. The Chebyshev polynomial distribution has been widely used for the optimal design of antennas and filters, but it has not been used for designing FBGs. Unlike the function of traditional Gaussi...

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Autores principales: Sun, Nai-Hsiang, Tsai, Min-Yu, Liau, Jiun-Jie, Chiang, Jung-Sheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10450710/
https://www.ncbi.nlm.nih.gov/pubmed/35510898
http://dx.doi.org/10.1177/00368504221094173
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author Sun, Nai-Hsiang
Tsai, Min-Yu
Liau, Jiun-Jie
Chiang, Jung-Sheng
author_facet Sun, Nai-Hsiang
Tsai, Min-Yu
Liau, Jiun-Jie
Chiang, Jung-Sheng
author_sort Sun, Nai-Hsiang
collection PubMed
description In this paper, a new apodized fiber Bragg grating (FBG) structure, the Chebyshev apodization, is proposed. The Chebyshev polynomial distribution has been widely used for the optimal design of antennas and filters, but it has not been used for designing FBGs. Unlike the function of traditional Gaussian-apodized FBGs, the Chebyshev polynomial is a discrete function. We demonstrate a new methodology for designing Chebyshev-apodized FBGs: the grating region is divided by discrete n sections with uniform gratings, while the index change is used to express the Chebyshev polynomial. We analyze the Chebyshev-apodized FBGs by using coupled mode theory and the piecewise-uniform approach. The reflection spectrum and the dispersion of Chebyshev-apodized FBGs are calculated and compared with those of Gaussian FBGs. Moreover, a sidelobe suppression level (SSL), a parameter of the Chebyshev polynomial, along with the maximum ac-index change of FBGs are analyzed. Assume that the grating length is 20mm, SSL is 100 dB, the section number is 40, and the maximum ac-index change is 2 × 10−4. The reflection spectrum of Chebyshev apodized FBGs shows flattened sidelobes with an absolute SSL of −95.9 dB (corresponding to SSL=100 dB). The simulation results reveal that at the same full width at half maximum, the Chebyshev FBGs have lower sidelobe suppression than the Gaussian FBGs, but their dispersion is similar. We demonstrate the potential of using Chebyshev-apodized FBGs in optical filters, dispersion compensators, and sensors; Chebyshev apodization can be applied in the design of periodic dielectric waveguides.
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spelling pubmed-104507102023-08-26 Chebyshev apodized fiber Bragg gratings Sun, Nai-Hsiang Tsai, Min-Yu Liau, Jiun-Jie Chiang, Jung-Sheng Sci Prog Conference Collection IMETI 2021 In this paper, a new apodized fiber Bragg grating (FBG) structure, the Chebyshev apodization, is proposed. The Chebyshev polynomial distribution has been widely used for the optimal design of antennas and filters, but it has not been used for designing FBGs. Unlike the function of traditional Gaussian-apodized FBGs, the Chebyshev polynomial is a discrete function. We demonstrate a new methodology for designing Chebyshev-apodized FBGs: the grating region is divided by discrete n sections with uniform gratings, while the index change is used to express the Chebyshev polynomial. We analyze the Chebyshev-apodized FBGs by using coupled mode theory and the piecewise-uniform approach. The reflection spectrum and the dispersion of Chebyshev-apodized FBGs are calculated and compared with those of Gaussian FBGs. Moreover, a sidelobe suppression level (SSL), a parameter of the Chebyshev polynomial, along with the maximum ac-index change of FBGs are analyzed. Assume that the grating length is 20mm, SSL is 100 dB, the section number is 40, and the maximum ac-index change is 2 × 10−4. The reflection spectrum of Chebyshev apodized FBGs shows flattened sidelobes with an absolute SSL of −95.9 dB (corresponding to SSL=100 dB). The simulation results reveal that at the same full width at half maximum, the Chebyshev FBGs have lower sidelobe suppression than the Gaussian FBGs, but their dispersion is similar. We demonstrate the potential of using Chebyshev-apodized FBGs in optical filters, dispersion compensators, and sensors; Chebyshev apodization can be applied in the design of periodic dielectric waveguides. SAGE Publications 2022-05-05 /pmc/articles/PMC10450710/ /pubmed/35510898 http://dx.doi.org/10.1177/00368504221094173 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by-nc/4.0/This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (https://creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access page (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Conference Collection IMETI 2021
Sun, Nai-Hsiang
Tsai, Min-Yu
Liau, Jiun-Jie
Chiang, Jung-Sheng
Chebyshev apodized fiber Bragg gratings
title Chebyshev apodized fiber Bragg gratings
title_full Chebyshev apodized fiber Bragg gratings
title_fullStr Chebyshev apodized fiber Bragg gratings
title_full_unstemmed Chebyshev apodized fiber Bragg gratings
title_short Chebyshev apodized fiber Bragg gratings
title_sort chebyshev apodized fiber bragg gratings
topic Conference Collection IMETI 2021
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10450710/
https://www.ncbi.nlm.nih.gov/pubmed/35510898
http://dx.doi.org/10.1177/00368504221094173
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