Wang Jianan, Liu Weici, Wei Zhongchao, Meng Hongyun, Liu Hongzhan, Guo Jianping, Yang Manxing, Song Yongkang, Xiang Liujing, Huang Zhenming, Li Haoxian, Wang Faqiang
Guangzhou Key Laboratory for Special Fiber Photonic Devices, Laboratory of Nanophotonic Functional Materials and Devices, School of Information and Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510006, China.
School of Engineering, Guangzhou College of Technology and Business, Foshan 528138, China.
Nanomaterials (Basel). 2021 Sep 11;11(9):2357. doi: 10.3390/nano11092357.
Quasi-bound states in the continuum provide an effective and observable way to improve metasurface performance, usually with an ultra-high-quality factor. Dielectric metasurfaces dependent on Mie resonances have the characteristic of significantly low loss, and the polarization can be affected by the parameter tuning of the structure. Based on the theory of quasi-bound states in the continuum, we propose and simulate a bifunctional resonant metasurface, whose periodic unit structure consists of four antiparallel and symmetrical amorphous silicon columns embedded in a poly(methyl methacrylate) layer. The metasurface can exhibit an extreme Huygens' regime in the case of an incident plane wave with linear polarization, while exhibiting chirality in the case of incident circular polarized light. Our structure provides ideas for promoting the multifunctional development of flat optical devices, as well as presenting potential in polarization-dependent fields.
连续谱中的准束缚态提供了一种有效且可观测的方式来提升超表面性能,通常具有超高的品质因数。依赖米氏共振的介质超表面具有显著低损耗的特性,并且极化可通过结构的参数调整来影响。基于连续谱中的准束缚态理论,我们提出并模拟了一种双功能共振超表面,其周期性单元结构由嵌入聚甲基丙烯酸甲酯层中的四个反平行且对称的非晶硅柱组成。当入射平面波为线偏振时,该超表面可呈现出极端的惠更斯状态,而当入射圆偏振光时则呈现出手征性。我们的结构为推动平面光学器件的多功能发展提供了思路,同时在偏振相关领域展现出潜力。