基于自旋复用元面的圆形对称艾里涡旋束的生成

IF 3.1 3区 物理与天体物理 Q2 Engineering
Optik Pub Date : 2024-09-10 DOI:10.1016/j.ijleo.2024.172021
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引用次数: 0

摘要

鉴于圆对称艾里漩涡束(CSAVB)具有稳定的中心腔和与圆艾里漩涡束相反的传输过程,它已被认为是一种潜在的强大粒子捕获和光通信工具。为了拓宽应用领域,本文提出了一种基于单个元表面生成多个 CASVB 的新方法。在所提出的方法中,可以在两个正交圆极化或任意线性极化入射条件下分别获得三个独立的、携带不同新型功率-幂指数-相位涡旋(NPEPV)的 CSAVB。每种涡旋结构都具有不同的轨道角动量,而轨道角动量则由 NPEPV 的两个参数共同决定。这表明,在控制光学涡旋方面,CSAVB 和设备比传统的光学涡旋光束和以前的涡旋光束发生器有更大的自由度。这些结果有望推动涡束的发展,并提高其在微操作、光通信和成像方面的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Generation of circular symmetric Airy vortex beams based on spin-multiplexed metasurface

Given that circular symmetric Airy vortex beam (CSAVB) was found to possess a stable central cavity and an opposing transport process to circular Airy vortex beam, it has been recognized as a potentially powerful tool for particle trapping and optical communication. In order to facilitate broader application scenarios, this paper presents a novel approach to the generation of multiple CASVBs based on a single metasurface. In the proposed method, three independent CSAVBs carrying different new kinds of power-exponent-phase vortices (NPEPVs) can be obtained under two orthogonal circularly polarized or an arbitrary linear polarized incident, respectively. Each of these vortex structures is characterized by a distinct orbital angular momentum, which is jointly determined by two parameters of the NPEPVs. This indicates that the CSAVB and the device have greater freedom than the canonical optical vortex beams and the previous vortex beam generators in controlling the optical vortex. These results have the potential to advance the development of vortex beams and enhance their applications in micromanipulation, optical communication and imaging.

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来源期刊
Optik
Optik 物理-光学
CiteScore
6.90
自引率
12.90%
发文量
1471
审稿时长
46 days
期刊介绍: Optik publishes articles on all subjects related to light and electron optics and offers a survey on the state of research and technical development within the following fields: Optics: -Optics design, geometrical and beam optics, wave optics- Optical and micro-optical components, diffractive optics, devices and systems- Photoelectric and optoelectronic devices- Optical properties of materials, nonlinear optics, wave propagation and transmission in homogeneous and inhomogeneous materials- Information optics, image formation and processing, holographic techniques, microscopes and spectrometer techniques, and image analysis- Optical testing and measuring techniques- Optical communication and computing- Physiological optics- As well as other related topics.
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