非对称光子自旋轨道相互作用实现的超表面

Q3 Engineering
Z. Fei, Yinghui Guo, M. Pu, Li Xiong, Xiaoliang Ma, Xiangang Luo
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引用次数: 6

摘要

光子自旋轨道相互作用是经典光学忽略的重要现象。近年来的研究发现,人工亚波长结构可以显著增强这一现象,并可根据需要进行调整。传统的超表面只支持对称的光子自旋-轨道相互作用,并且存在共轭对称性的限制,使得难以使用不同的自旋态进行多功能集成、复杂光场调节、信息加密和存储。不对称光子自旋轨道相互作用可以解耦左右圆偏振光,这为突破上述理论和应用局限带来了新的机遇。本文首先介绍了不对称光子自旋轨道相互作用的原理和实现方法,其次介绍了不对称光子自旋轨道相互作用的代表性应用和特点,最后概述了不对称光子自旋轨道相互作用面临的挑战和对未来研究方向的展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metasurfaces enabled by asymmetric photonic spin-orbit interactions
Photonic spin-orbit interaction is an important phenomenon ignored by classical optics. In recent years, studies have found that this phenomenon can be significantly enhanced by artificial subwavelength structures and adjusted on demand. Traditional metasurfaces only support symmetric photon spin-orbit interactions, and there are limitations in conjugate symmetry, which makes it difficult to use different spin states for multifunctional integration, complex optical field regulation, information encryption, and storage. The asymmetric photon spin-orbit interaction can decouple left and right circularly polarized light, which brings new opportunities for breaking the above-mentioned theoretical and application limitations. This article first introduces the principle and realization method of asymmetric photon spin-orbit interactions, secondly introduces the representative applications and characteristics of asymmetric photon-spin-orbit interactions, and finally outlines the challenges and prospects of asymmetric photon spin-orbit interactions for future research directions.
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来源期刊
光电工程
光电工程 Engineering-Electrical and Electronic Engineering
CiteScore
2.00
自引率
0.00%
发文量
6622
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