Dual-polarized multiplexed meta-holograms utilizing coding metasurface
Author:
Guan Chunsheng12, Liu Jian1, Ding Xumin12, Wang Zhuochao12, Zhang Kuang2, Li Haoyu1, Jin Ming2, Burokur Shah Nawaz3, Wu Qun2
Affiliation:
1. Advanced Microscopy and Instrumentation Research Center , Harbin Institute of Technology , Harbin 150080 , China 2. Department of Microwave Engineering , Harbin Institute of Technology , Harbin 150001 , China 3. LEME, UPL, Université Paris Nanterre , F92410 Ville d’Avray , France
Abstract
Abstract
In this paper, a novel method is proposed to achieve two distinct information channels by simultaneously manipulating both the transmitted cross- and co-polarized components of a 1-bit coding metasurface under linearly polarized incidence. Compared to previously demonstrated incidence-switchable or position multiplexed holograms, our proposed coding meta-hologram can simultaneously project two independent holographic images without inevitable change of the incidence state and can at the same time also avoid crosstalk between different channels. Moreover, the orientation of the double-layered split ring (SR) apertures is specially designed to be 45° or 135° to achieve identical multiplexed functionality for both x-polarized and y-polarized incidences. The proof-of-concept experimental demonstrations present total transmittance efficiency above 30% for the dual linearly polarized incidences at 15 GHz, and good imaging performances with 53.98%/48.18% imaging efficiency, 1.55%/1.46% RMSE, and 29.9/28.72 peak signal-to-noise ratio for the cross-/co-polarized channels under y-polarized incidence, and 47.27%/45.75% imaging efficiency, 1.55%/1.43% RMSE, and 18.74/25.93 peak signal-to-noise ratio under x-polarized incidence, demonstrating great potential of the proposed multiplexed coding meta-hologram in practical applications such as data storage and information processing.
Funder
National Natural Science Foundation of China
Publisher
Walter de Gruyter GmbH
Subject
Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology
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