Bound states in the continuum in all-dielectric metasurfaces with scaled lattice constants

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作者
Mimi Zhou
Shaojun You
Lei Xu
Menghui Fan
Jing Huang
Wenbin Ma
Mingzhe Hu
Shengyun Luo
Mohsen Rahmani
Ya Cheng
Lin Li
Chaobiao Zhou
Lujun Huang
Andrey E. Miroshnichenko
机构
[1] Guizhou Minzu University,School of Physics and Mechatronic Engineering
[2] Guizhou Minzu University,School of Chemical Engineering
[3] Guizhou Minzu University,School of Materials Science and Engineering
[4] Nottingham Trent University,Advanced Optics and Photonics Laboratory, Department of Engineering, School of Science Technology
[5] East China Normal University,Extreme Optoelectromechanics Laboratory (XXL), School of Physics and Electronic Sciences
[6] East China Normal University,State Key Laboratory of Precision Spectroscopy, School of Physics and Electronic Science
[7] University of New South Wales at Canberra,School of Engineering and Information Technology
关键词
lattice perturbation; bound state in the continuum; dielectric nanostructure;
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摘要
Bound states in the continuum (BICs) have emerged as an efficient tool for trapping light at the nanoscale, promising several exciting applications in photonics. Breaking the structural symmetry has been proposed as an effective way of exciting quasi-BlCs (QBICs) and generating high-Q resonances. Herein, we demonstrate that QBICs can be excited in an all-dielectric metasurface by scaling the lattice of the metasurface, causing translational symmetry breaking. The corresponding BICs arise from band folding from the band edge to the Γ point in the first Brillouin zone. Multipole analysis reveals that the toroidal dipole dominates these QBICs. Furthermore, scaling the lattice along different directions provides additional freedom for tailoring QBICs, enabling polarization-dependent or -independent QBICs. In addition, this allows the realization of two QBICs at different wavelengths using plane-wave illumination with different polarizations on the metasurface. We experimentally demonstrated the existence of these BICs by fabricating silicon metasurfaces with scaled lattices and measuring their transmission spectra. The vanished resonant linewidth identifies BICs in the transmission spectrum, and the QBICs are characterized by high-Q Fano resonances with the Q-factor reaching 2000. Our results have potential applications in enhancing light-matter interaction, such as laser, nonlinear harmonic generation, and strong coupling.
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