束缚态
物理
激光阈值
共振(粒子物理)
电介质
二次谐波产生
硅
偶极子
对称(几何)
凝聚态物理
实现(概率)
拓扑(电路)
光电子学
光学
量子力学
激光器
电气工程
数学
几何学
统计
工程类
作者
Cizhe Fang,Qiyu Yang,Qingchen Yuan,Xuetao Gan,Jianlin Zhao,Yao Shao,Yan Liu,Genquan Han,Yue Hao
标识
DOI:10.29026/oea.2021.200030
摘要
The realization of high-Q resonances in a silicon metasurface with various broken-symmetry blocks is reported. Theoretical analysis reveals that the sharp resonances in the metasurfaces originate from symmetry-protected bound in the continuum (BIC) and the magnetic dipole dominates these peculiar states. A smaller size of the defect in the broken-symmetry block gives rise to the resonance with a larger Q factor. Importantly, this relationship can be tuned by changing the structural parameter, resulting from the modulation of the topological configuration of BICs. Consequently, a Q factor of more than 3,000 can be easily achieved by optimizing dimensions of the nanostructure. At this sharp resonance, the intensity of the third harmonic generation signal in the patterned structure can be 368 times larger than that of the flat silicon film. The proposed strategy and underlying theory can open up new avenues to realize ultrasharp resonances, which may promote the development of the potential meta-devices for nonlinearity, lasing action, and sensing.
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