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Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure

Graphene-embedded waveguide filters have been widely used in the areas of polarization and mode filtering because of their characteristics of easy fabrication, high integration, and high extinction ratio. In this article, we propose thermal tuning filters based on a graphene-embedded polymer–silica...

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Autores principales: Cao, Yue, Lin, Baizhu, Sun, Yue, Che, Xinchi, Yi, Yunji, Wang, Fei, Zhang, Daming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085520/
https://www.ncbi.nlm.nih.gov/pubmed/35548729
http://dx.doi.org/10.1039/c8ra06038j
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author Cao, Yue
Lin, Baizhu
Sun, Yue
Che, Xinchi
Yi, Yunji
Wang, Fei
Zhang, Daming
author_facet Cao, Yue
Lin, Baizhu
Sun, Yue
Che, Xinchi
Yi, Yunji
Wang, Fei
Zhang, Daming
author_sort Cao, Yue
collection PubMed
description Graphene-embedded waveguide filters have been widely used in the areas of polarization and mode filtering because of their characteristics of easy fabrication, high integration, and high extinction ratio. In this article, we propose thermal tuning filters based on a graphene-embedded polymer–silica hybrid waveguide. Compared to previously reported filters, this device can realize the efficient adjustment of the relative position between the optical field and graphene layer by thermal tuning. Consequently, the polarization and mode filtering properties of the filter can be adjusted by thermal tuning. This high-efficiency tuning characteristic is due to the opposite thermo-optic coefficient of the polymer and silica material. Furthermore, a layer with a low refractive index is embedded in the polymer–silica hybrid core to increase the tuning efficiency. The optical absorption, mode properties, and thermal field distributions were simulated. It was found that such single-mode filters could realize E(x)(11)-pass or E(x)(11)-stop selection, and the attenuation variation (Δα) was optimized to 32.20 dB cm(−1) (E(x)(11) mode) using the top electrode and air trench structure with ΔT = 10 K and P = 48.39 mW in the single-mode waveguide. For the multimode waveguide filters, the attenuation variation (Δα) of the E(x)(mn) modes (E(x)(11), E(x)(12), and E(x)(21)) was also calculated. Such thermal tuning filters were found to be compatible with chemical potential regulation graphene modulators and filters, and they can be applied to broadband photonic integrated circuits and mode division multiplexing systems.
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spelling pubmed-90855202022-05-10 Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure Cao, Yue Lin, Baizhu Sun, Yue Che, Xinchi Yi, Yunji Wang, Fei Zhang, Daming RSC Adv Chemistry Graphene-embedded waveguide filters have been widely used in the areas of polarization and mode filtering because of their characteristics of easy fabrication, high integration, and high extinction ratio. In this article, we propose thermal tuning filters based on a graphene-embedded polymer–silica hybrid waveguide. Compared to previously reported filters, this device can realize the efficient adjustment of the relative position between the optical field and graphene layer by thermal tuning. Consequently, the polarization and mode filtering properties of the filter can be adjusted by thermal tuning. This high-efficiency tuning characteristic is due to the opposite thermo-optic coefficient of the polymer and silica material. Furthermore, a layer with a low refractive index is embedded in the polymer–silica hybrid core to increase the tuning efficiency. The optical absorption, mode properties, and thermal field distributions were simulated. It was found that such single-mode filters could realize E(x)(11)-pass or E(x)(11)-stop selection, and the attenuation variation (Δα) was optimized to 32.20 dB cm(−1) (E(x)(11) mode) using the top electrode and air trench structure with ΔT = 10 K and P = 48.39 mW in the single-mode waveguide. For the multimode waveguide filters, the attenuation variation (Δα) of the E(x)(mn) modes (E(x)(11), E(x)(12), and E(x)(21)) was also calculated. Such thermal tuning filters were found to be compatible with chemical potential regulation graphene modulators and filters, and they can be applied to broadband photonic integrated circuits and mode division multiplexing systems. The Royal Society of Chemistry 2018-08-31 /pmc/articles/PMC9085520/ /pubmed/35548729 http://dx.doi.org/10.1039/c8ra06038j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Cao, Yue
Lin, Baizhu
Sun, Yue
Che, Xinchi
Yi, Yunji
Wang, Fei
Zhang, Daming
Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure
title Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure
title_full Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure
title_fullStr Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure
title_full_unstemmed Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure
title_short Thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure
title_sort thermal tuning of graphene-embedded waveguide filters based on the polymer–silica hybrid structure
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085520/
https://www.ncbi.nlm.nih.gov/pubmed/35548729
http://dx.doi.org/10.1039/c8ra06038j
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