Shen Fei, Kang Qianlong, Wang Jingjing, Guo Kai, Zhou Qingfeng, Guo Zhongyi
School of Computer and Information, Hefei University of Technology, Hefei 230009, China.
Nanomaterials (Basel). 2018 Nov 14;8(11):938. doi: 10.3390/nano8110938.
Dielectric nanoresonantors may generate both electric and magnetic Mie resonances with low optical loss, thereby offering highly efficient paths for obtaining integrated optical devices. In this paper, we propose and design an optical filter with a high working efficiency in the mid-infrared (mid-IR) range, based on an all-dielectric metasurface composed of silicon (Si) nanodisk arrays. We numerically demonstrate that, by increasing the diameter of the Si nanodisk, the range of the proposed reflective optical filter could effectively cover a wide range of operation wavelengths, from 3.8 μm to 4.7 μm, with the reflection efficiencies reaching to almost 100%. The electromagnetic eigen-mode decomposition of the silicon nanodisk shows that the proposed optical filter is based on the excitation of the electric dipole resonance. In addition, we demonstrate that the proposed filter has other important advantages of polarization-independence and incident-angle independence, ranging from 0° to 20° at the resonance dip, which can be used in a broad range of applications, such as sensing, imaging, and energy harvesting.
介电纳米谐振器可以产生具有低光学损耗的电和磁米氏共振,从而为获得集成光学器件提供高效路径。在本文中,我们基于由硅(Si)纳米盘阵列组成的全介质超表面,提出并设计了一种在中红外(mid-IR)范围内具有高工作效率的光学滤波器。我们通过数值模拟证明,通过增加Si纳米盘的直径,所提出的反射式光学滤波器的范围可以有效地覆盖从3.8μm到4.7μm的宽工作波长范围,反射效率几乎达到100%。硅纳米盘的电磁本征模分解表明,所提出的光学滤波器基于电偶极共振的激发。此外,我们证明所提出的滤波器具有其他重要优点,即偏振无关性和入射角无关性,在共振凹陷处入射角范围为0°至20°,可用于广泛的应用,如传感、成像和能量收集。