Cai Haocheng, Yu Xiaoxu, Mao Luhong
School of Electrical and Information Engineering, Tianjin University, Tianjin 300072, China.
Tianjin Navigation Instrument Research Institute, Tianjin 300131, China.
Materials (Basel). 2023 Mar 6;16(5):2113. doi: 10.3390/ma16052113.
The appearance of all-dielectric micro-nano photonic devices constructed from high refractive index dielectric materials offers a low-loss platform for the manipulation of electromagnetic waves. The manipulation of electromagnetic waves by all-dielectric metasurfaces reveals unprecedented potential, such as focusing electromagnetic waves and generating structured light. Recent advances in dielectric metasurfaces are associated with bound states in the continuum, which can be described as non-radiative eigen modes above the light cone supported by metasurfaces. Here, we propose an all-dielectric metasurface composed of elliptic cross pillars arranged periodically and verify that the displacement distance of a single elliptic pillar can control the strength of the light-matter interaction. Specifically, when the elliptic cross pillar is C symmetric, the quality factor of the metasurface at the Γ point is infinite, also called the bound states in the continuum. Once the C symmetry is broken by moving a single elliptic pillar, the corresponding metasurface engenders mode leakage; however, the large quality factor still exists, which is called the quasi-bound states in the continuum. Then, it is verified by simulation that the designed metasurface is sensitive to the refractive index change of the surrounding medium, indicating that it can be applied for refractive index sensing. Moreover, combined with the specific frequency and the refractive index variation of the medium around the metasurface, the information encryption transmission can be realized effectively. Therefore, we envisage that the designed all-dielectric elliptic cross metasurface can promote the development of miniaturized photon sensors and information encoders due to its sensitivity.
由高折射率介电材料构建的全介质微纳光子器件的出现,为电磁波的操控提供了一个低损耗平台。全介质超表面对电磁波的操控展现出了前所未有的潜力,比如聚焦电磁波和产生结构化光。介电超表面的最新进展与连续统中的束缚态相关,其可被描述为超表面所支持的光锥之上的非辐射本征模式。在此,我们提出一种由周期性排列的椭圆横截面柱体组成的全介质超表面,并验证单个椭圆柱体的位移距离能够控制光与物质相互作用的强度。具体而言,当椭圆横截面柱体具有C对称性时,超表面在Γ点的品质因数为无穷大,这也被称为连续统中的束缚态。一旦通过移动单个椭圆柱体打破C对称性,相应的超表面就会产生模式泄漏;然而,大品质因数仍然存在,这被称为连续统中的准束缚态。随后,通过模拟验证了所设计的超表面对周围介质的折射率变化敏感,这表明它可应用于折射率传感。此外,结合特定频率以及超表面周围介质的折射率变化,能够有效实现信息加密传输。因此,我们设想所设计的全介质椭圆横截面超表面因其敏感性可推动小型化光子传感器和信息编码器的发展。