Abstract

Metasurfaces can perform high-performance multi-functional integration by manipulating the abundant physical dimensions of light, demonstrating great potential in high-capacity information technologies. The orbital angular momentum (OAM) and spin angular momentum (SAM) dimensions have been respectively explored as the independent carrier for information multiplexing. However, fully managing these two intrinsic properties in information multiplexing remains elusive. Here, we propose the concept of angular momentum (AM) holography which can fully synergize these two fundamental dimensions to act as the information carrier, via a single-layer, non-interleaved metasurface. The underlying mechanism relies on independently controlling the two spin eigenstates and arbitrary overlaying them in each operation channel, thereby spatially modulating the resulting waveform at will. As a proof of concept, we demonstrate an AM meta-hologram allowing the reconstruction of two sets of holographic images, i.e., the spin-orbital locked and the spin-superimposed ones. Remarkably, leveraging the designed dual-functional AM meta-hologram, we demonstrate a novel optical nested encryption scheme, which is able to achieve parallel information transmission with ultra-high capacity and security. Our work opens a new avenue for optionally manipulating the AM, holding promising applications in the fields of optical communication, information security and quantum science.

Details

Title
Angular momentum holography via a minimalist metasurface for optical nested encryption
Author
Yang, Hui 1 ; He, Peng 2 ; Ou, Kai 3 ; Hu, Yueqiang 4   VIAFID ORCID Logo  ; Jiang, Yuting 2 ; Ou, Xiangnian 2 ; Jia, Honghui 4 ; Xie, Zhenwei 5   VIAFID ORCID Logo  ; Yuan, Xiaocong 5   VIAFID ORCID Logo  ; Duan, Huigao 4   VIAFID ORCID Logo 

 Hunan University, National Research Center for High-Efficiency Grinding, College of Mechanical and Vehicle Engineering, Changsha, China (GRID:grid.67293.39); Shenzhen University, Nanophotonics Research Center, Shenzhen Key Laboratory of Micro-scale Optical Information Technology, Institute of Microscale Optoelectronics, Shenzhen, China (GRID:grid.263488.3) (ISNI:0000 0001 0472 9649) 
 Hunan University, National Research Center for High-Efficiency Grinding, College of Mechanical and Vehicle Engineering, Changsha, China (GRID:grid.67293.39) 
 Tongji University, Institute of Precision Optical Engineering, School of Physics Science and Engineering, Shanghai, China (GRID:grid.24516.34) (ISNI:0000000123704535) 
 Hunan University, National Research Center for High-Efficiency Grinding, College of Mechanical and Vehicle Engineering, Changsha, China (GRID:grid.67293.39); Hunan University, Greater Bay Area Institute for Innovation, Guangzhou, China (GRID:grid.67293.39) 
 Shenzhen University, Nanophotonics Research Center, Shenzhen Key Laboratory of Micro-scale Optical Information Technology, Institute of Microscale Optoelectronics, Shenzhen, China (GRID:grid.263488.3) (ISNI:0000 0001 0472 9649) 
Pages
79
Publication year
2023
Publication date
2023
Publisher
Springer Nature B.V.
e-ISSN
20477538
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2791793795
Copyright
© The Author(s) 2023. This work is published under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.