Active formation of Friedrich-Wintgen bound states in the continuum in dielectric dimerized grating borophene heterostructure

栅栏 等离子体子 电介质 波长 光电子学 共振(粒子物理) 模式音量 偶极子 表面等离子共振 材料科学 物理 光学 纳米技术 量子力学 光纤 纳米颗粒 渐变折射率纤维 光纤传感器
作者
Xiaofei Yan,Xinyang Wang,Qi Lin,Lingling Wang,Guidong Liu
出处
期刊:Cornell University - arXiv
标识
DOI:10.48550/arxiv.2401.10630
摘要

The Friedrich-Wintgen bound state in the continuum (FW BIC) provides a unique approach for achieving high quality factor (Q-factor) resonance, which has attracted wide attention and promoted the development of various applications. However, the FW BIC is usually considered as accident BIC resulting from the continuous parameters tuning, and a systematic approach to generate the FW BIC is still lacking. To address this, a method of actively forming FW BIC by matching the damping rate and resonance frequency of the coupling mode is proposed. As a proof-of-principle example, we propose a dielectric dimerized grating borophene heterostructure that generates a FW BIC near the commercially important communication wavelength. The coupling system comprises an electrically tunable borophene plasmon mode and a BIC supported by a dielectric dimer grating that can be attributed to the Brillouin zone folding. More interestingly, the BIC can be excited by the localized borophene plasmon (LBP) mode through near-field coupling as LBP mode can be considered as the dipole source. The interaction between them can further form the FW BIC, and support electromagnetically induced transparency (EIT)-like with maximum group index up to 2043, indicating its great potential for slow light applications. Our results provide a promising strategy and theoretical support for the generation of FW BIC in active plasmonic optical devices.
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