Broadband generation of perfect Poincaré beams via dielectric spin-multiplexed metasurface

被引:0
作者
Mingze Liu
Pengcheng Huo
Wenqi Zhu
Cheng Zhang
Si Zhang
Maowen Song
Song Zhang
Qianwei Zhou
Lu Chen
Henri J. Lezec
Amit Agrawal
Yanqing Lu
Ting Xu
机构
[1] Nanjing University,National Laboratory of Solid
[2] Collaborative Innovation Center of Advanced Microstructures,State Microstructures, Jiangsu Key Laboratory of Artificial Functional Materials, College of Engineering and Applied Sciences
[3] National Institute of Standards and Technology,Physical Measurement Laboratory
[4] University of Maryland,Maryland NanoCenter
[5] Huazhong University of Science and Technology,School of Optical and Electronic Information, Wuhan National Laboratory for Optoelectronics
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Nature Communications | / 12卷
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摘要
The term Poincaré beam, which describes the space-variant polarization of a light beam carrying spin angular momentum (SAM) and orbital angular momentum (OAM), plays an important role in various optical applications. Since the radius of a Poincaré beam conventionally depends on the topological charge number, it is difficult to generate a stable and high-quality Poincaré beam by two optical vortices with different topological charge numbers, as the Poincaré beam formed in this way collapses upon propagation. Here, based on an all-dielectric metasurface platform, we experimentally demonstrate broadband generation of a generalized perfect Poincaré beam (PPB), whose radius is independent of the topological charge number. By utilizing a phase-only modulation approach, a single-layer spin-multiplexed metasurface is shown to achieve all the states of PPBs on the hybrid-order Poincaré Sphere for visible light. Furthermore, as a proof-of-concept demonstration, a metasurface encoding multidimensional SAM and OAM states in the parallel channels of elliptical and circular PPBs is implemented for optical information encryption. We envision that this work will provide a compact and efficient platform for generation of PPBs for visible light, and may promote their applications in optical communications, information encryption, optical data storage and quantum information sciences.
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