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基于全介质自旋复用超表面产生多维聚焦和矢量涡旋光束的理论研究

Theoretical Study on Generation of Multidimensional Focused and Vector Vortex Beams via All-Dielectric Spin-Multiplexed Metasurface.

作者信息

Liu Yue, Chen Li, Zhou Chengxin, Guo Kuangling, Wang Xiaoyi, Hong Yuhan, Yang Xiangbo, Wei Zhongchao, Liu Hongzhan

机构信息

Guangdong Provincial Key Laboratory of Nanophotonic Functional Materials and Devices, Guangzhou 510006, China.

School of Information and Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510006, China.

出版信息

Nanomaterials (Basel). 2022 Feb 9;12(4):580. doi: 10.3390/nano12040580.

Abstract

The optical vortex (OV) beams characterized by orbital angular momentum (OAM) possess ubiquitous applications in optical communication and nanoparticle manipulation. Particularly, the vortex vector beams are important in classical physics and quantum sciences. Here, based on an all-dielectric transmission metasurface platform, we demonstrate a spin-multiplexed metadevice combining propagation phase and Pancharatnam-Berry (PB) phase. By utilizing a phase-only modulation method, the metadevice can generate spin-dependent and multidimensional focused optical vortex (FOV) under the orthogonally circularly polarized incident light, and it can successfully realize the multiplexed of the above-mentioned FOVs for linearly polarized light. Meanwhile, the superposition of multiple OAM states can also produce vector vortex beams with different modes. Additionally, the evolution process of the electric field intensity profile is presented after the resultant vector vortex beams through a horizontal linear polarization. This work paves an innovative way for generating structured beams, and it provides promising opportunities for advanced applications in optical data storage, optical micromanipulation, and data communication.

摘要

具有轨道角动量(OAM)的光学涡旋(OV)光束在光通信和纳米粒子操纵中有着广泛的应用。特别是,涡旋矢量光束在经典物理学和量子科学中很重要。在此,基于全介质传输超表面平台,我们展示了一种结合传播相位和潘查拉特纳姆 - 贝里(PB)相位的自旋复用超器件。通过利用仅相位调制方法,该超器件可以在正交圆偏振入射光下产生自旋相关的多维聚焦光学涡旋(FOV),并且它可以成功实现上述FOV对线性偏振光的复用。同时,多个OAM态的叠加也可以产生不同模式的矢量涡旋光束。此外,给出了合成的矢量涡旋光束通过水平线性偏振后电场强度分布的演变过程。这项工作为生成结构化光束开辟了一条创新途径,并为光数据存储、光微操纵和数据通信等先进应用提供了广阔的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15ec/8880084/ea972cd347d2/nanomaterials-12-00580-g001.jpg

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