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用于产生和操控光学涡旋光束的光学超表面。

Optical metasurfaces for generating and manipulating optical vortex beams.

作者信息

Ahmed Hammad, Kim Hongyoon, Zhang Yuebian, Intaravanne Yuttana, Jang Jaehyuck, Rho Junsuk, Chen Shuqi, Chen Xianzhong

机构信息

School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh EH144AS, UK.

Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea.

出版信息

Nanophotonics. 2022 Jan 10;11(5):941-956. doi: 10.1515/nanoph-2021-0746. eCollection 2022 Feb.

Abstract

Optical vortices (OVs) carrying orbital angular momentum (OAM) have attracted considerable interest in the field of optics and photonics owing to their peculiar optical features and extra degree of freedom for carrying information. Although there have been significant efforts to realize OVs using conventional optics, it is limited by large volume, high cost, and lack of design flexibility. Optical metasurfaces have recently attracted tremendous interest due to their unprecedented capability in the manipulation of the amplitude, phase, polarization, and frequency of light at a subwavelength scale. Optical metasurfaces have revolutionized design concepts in photonics, providing a new platform to develop ultrathin optical devices for the realization of OVs at subwavelength resolution. In this article, we will review the recent progress in optical metasurface-based OVs. We provide a comprehensive discussion on the optical manipulation of OVs, including OAM superposition, OAM sorting, OAM multiplexing, OAM holography, and nonlinear metasurfaces for OAM generation and manipulation. The rapid development of metasurface for OVs generation and manipulation will play an important role in many relevant research fields. We expect that metasurface will fuel the continuous progress of wearable and portable consumer electronics and optics where low-cost and miniaturized OAM related systems are in high demand.

摘要

携带轨道角动量(OAM)的光学涡旋(OVs)因其独特的光学特性和携带信息的额外自由度,在光学和光子学领域引起了广泛关注。尽管人们已经做出了巨大努力,试图利用传统光学来实现光学涡旋,但它受到体积大、成本高以及缺乏设计灵活性的限制。光学超表面最近因其在亚波长尺度上操纵光的振幅、相位、偏振和频率方面前所未有的能力而备受关注。光学超表面彻底改变了光子学的设计理念,为开发超薄光学器件提供了一个新平台,以实现亚波长分辨率的光学涡旋。在本文中,我们将回顾基于光学超表面的光学涡旋的最新进展。我们对光学涡旋的光学操纵进行了全面讨论,包括轨道角动量叠加、轨道角动量分选、轨道角动量复用、轨道角动量全息术以及用于轨道角动量产生和操纵的非线性超表面。用于光学涡旋产生和操纵的超表面的快速发展将在许多相关研究领域发挥重要作用。我们预计,超表面将推动可穿戴和便携式消费电子产品及光学领域的持续发展,在这些领域中,对低成本和小型化的轨道角动量相关系统有很高的需求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ade/11501437/e70f49436b91/j_nanoph-2021-0746_fig_001.jpg

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