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基于亚波长光栅的多功能贾纳斯超表面设计

Design of Multifunctional Janus Metasurface Based on Subwavelength Grating.

作者信息

Ji Ruonan, Jin Chuan, Song Kun, Wang Shao-Wei, Zhao Xiaopeng

机构信息

Smart Materials Lab, School of Physical Science and Technology, Northwestern Polytechnical University, Xi'an 710129, China.

State Key laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics of CAS, Xi'an 710119, China.

出版信息

Nanomaterials (Basel). 2021 Apr 19;11(4):1034. doi: 10.3390/nano11041034.

Abstract

In this paper, a Janus metasurface is designed by breaking the structural symmetry based on the polarization selection property of subwavelength grating. The structure comprises three layers: a top layer having a metallic nanostructure, a dielectric spacer, and a bottom layer having subwavelength grating. For a forward incidence, the metal-insulator-metal (MIM) structure operates as a gap plasmonic cavity if the linearly polarized (LP) component is parallel to the grating wires. It also acts as a high-efficiency dual-layer grating polarizer for the orthogonal LP component. For the backward incidence, the high reflectance of the grating blocks the function of the gap plasmonic cavity, leading to its pure functioning as a polarizer. A bifunctional Janus metasurface for 45 degrees beam deflector and polarizer, with a transmission of 0.87 and extinction ratio of 3840, is designed at 1.55 μm and is investigated to prove the validity of the proposed strategy. Moreover, the proposed metasurface can be cascaded to achieve more flexible functions since these functions are independent in terms of operational mechanism and structural parameters. A trifunctional Janus metasurface that acts as a focusing lens, as a reflector, and as a polarizer is designed based on this strategy. The proposed metasurface and the design strategy provide convenience and flexibility in the design of multifunctional, miniaturized, and integrated optical components for polarization-related analysis and for detection systems.

摘要

本文基于亚波长光栅的偏振选择特性,通过打破结构对称性设计了一种双面超表面。该结构由三层组成:具有金属纳米结构的顶层、介电间隔层和具有亚波长光栅的底层。对于正向入射,如果线偏振(LP)分量与光栅线平行,金属-绝缘体-金属(MIM)结构作为一个间隙等离子体腔。对于正交的LP分量,它还充当高效的双层光栅偏振器。对于反向入射,光栅的高反射率阻碍了间隙等离子体腔的功能,使其仅作为偏振器发挥作用。在1.55μm波长处设计了一种用于45度光束偏转器和偏振器的双功能双面超表面,其透射率为0.87,消光比为3840,并对其进行了研究以验证所提策略的有效性。此外,由于这些功能在操作机制和结构参数方面相互独立,所提超表面可以级联以实现更灵活的功能。基于此策略设计了一种三功能双面超表面,它可作为聚焦透镜、反射器和偏振器。所提超表面和设计策略为用于偏振相关分析的多功能、小型化和集成光学元件以及检测系统的设计提供了便利和灵活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/706f/8073647/c7ff93dc07ec/nanomaterials-11-01034-g001.jpg

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