Temperature-controlled optical switch metasurface with large local field enhancement based on FW-BIC
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Published:2023-03-10
Issue:
Volume:5
Page:
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ISSN:2673-3013
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Container-title:Frontiers in Nanotechnology
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language:
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Short-container-title:Front. Nanotechnol.
Author:
Wang Xiuyu,Wang Xiaoman,Ren Qun,Cai Haocheng,Xin Jihong,Lang Yuxin,Xiao Xiaofei,Lan Zhihao,You Jianwei,Sha Wei E. I.
Abstract
Introduction: Many researchers have explored the bound states in the continuum (BICs) as a particular bound wave state which can be used to achieve a very high Q-factor. High-Q factor devices, typically based on the bound states in the continuum (BICs), are well used in the fields of hypersensitive biochemical sensors, non-linear effects enhancement, plasmon lasers, and hi-performance filtering. However, symmetrical-protected BIC is difficult to achieve experimentally high-Q factor because it strongly depends on the geometry and can be destroyed by any slight disturbance in the potential well.Methods: Therefore, we proposed a parameter-adjusted Friedrich-Wintergen BIC based on the analysis model of time-coupled model theory, where the target system parameters can be tuned to achieve high-Q excitation.Results: Moreover, considering the tunability and flexibility of the components in various practical applications, we integrate active materials into metasurface arrays with the help of external stimuli to achieve modulation of high-Q resonances. Our results demonstrate that an optical resonator based on FW-BIC can modulate the BIC state by changing the intermediate gap.Discussion: The BIC state and the high-Q factor Fano resonance can be dynamically tuned by adding temperature-sensitive VO2 material.
Funder
National Natural Science Foundation of China
Publisher
Frontiers Media SA
Subject
Electrical and Electronic Engineering,Computer Science Applications,Biomedical Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials
Cited by
1 articles.
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