Dual‐Layer Metasurface Enhanced Capacity of Polarization Multiplexing

Author:

Zhang Runzhe123,Guo Yinghui1234,Zhang Fei124,Pu Mingbo1234,Fan Yulong12,Zhang Qi124,Li Xiaoyin124,Xu Mingfeng124,Xu Junwen5,Luo Xiangang123ORCID

Affiliation:

1. National Key Laboratory of Optical Field Manipulation Science and Technology Chinese Academy of Sciences Chengdu 610209 China

2. State Key Laboratory of Optical Technologies on Nano‐Fabrication and Micro‐Engineering Institute of Optics and Electronics Chinese Academy of Sciences Chengdu 610209 China

3. College of Materials Science and Opto‐Electronic Technology University of Chinese Academy of Sciences Beijing 100049 China

4. Research Center on Vector Optical Fields Institute of Optics and Electronics Chinese Academy of Sciences Chengdu China

5. Tianfu Xinglong Lake Laboratory Chengdu 610299 China

Abstract

AbstractPolarization is the nature of optics. Exploiting metasurface's polarizations can enhance the multiplexing capacity but face a limited number of channels. For example, a single‐layer metasurface can offer three independent channels with six degrees of freedom (DoFs) including the amplitude and phase of Ex, Exy(yx), and Ey of the Jones matrix. In this work, it is theoretically demonstrated that the degrees of freedom of dual‐layer metasurfaces can reach eight, overcoming the polarization multiplexing constraints of single‐layer metasurfaces and that the cross‐talk can be largely reduced as compared with single‐layer metasurfaces when the channel number is larger than three. Numerical calculations manifest a decrease of 100%, 63%, and 50% for the cross‐talk of channels 4, 5, and 6, respectively. As a proof‐of‐concept demonstration of high‐capacity polarization multiplexing, an arbitrary‐polarization‐controlled 5‐channel dual‐layer metasurface exhibiting five nanoprintings and five holographic images with reduced cross‐talk under different incident and output polarizations is successfully designed. Thus, the research highlighting the high‐multiplexing‐capacity of dual‐layer metasurfaces can significantly advance multifunctional optical devices with high efficiency, simple integration, and ease of manipulation.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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