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用于扭曲光操控的纳米光子材料

Nanophotonic Materials for Twisted-Light Manipulation.

作者信息

Ren Haoran, Maier Stefan A

机构信息

MQ Photonics Research Centre, Department of Physics and Astronomy, Macquarie University, Macquarie Park, NSW, 2109, Australia.

Chair in Hybrid Nanosystems, Nanoinstitute Munich, Faculty of Physics, Ludwig-Maximilians-University Munich, 80539, Munich, Germany.

出版信息

Adv Mater. 2023 Aug;35(34):e2106692. doi: 10.1002/adma.202106692. Epub 2022 Feb 3.

Abstract

Twisted light, an unbounded set of helical spatial modes carrying orbital angular momentum (OAM), offers not only fundamental new insights into structured light-matter interactions, but also a new degree of freedom to boost optical and quantum information capacity. However, current OAM experiments still rely on bulky, expensive, and slow-response diffractive or refractive optical elements, hindering today's OAM systems to be largely deployed. In the last decade, nanophotonics has transformed the photonic design and unveiled a diverse range of compact and multifunctional nanophotonic devices harnessing the generation and detection of OAM modes. Recent metasurface devices developed for OAM generation in both real and momentum space, presenting design principle and exemplary devices, are summarized. Moreover, recent development of whispering-gallery-mode-based passive and tunable microcavities, capable of extracting degenerate OAM modes for on-chip vortex emission and lasing, is summarized. In addition, the design principle of different plasmonic devices and photodetectors recently developed for on-chip OAM detection is discussed. Current challenges faced by the nanophotonic field for twisted-light manipulation and future advances to meet these challenges are further discussed. It is believed that twisted-light manipulation in nanophotonics will continue to make significant impact on future development of ultracompact, ultrahigh-capacity, and ultrahigh-speed OAM systems-on-a-chip.

摘要

扭曲光,即一组携带轨道角动量(OAM)的无界螺旋空间模式,不仅为结构化光与物质相互作用提供了全新的基本见解,还为提高光学和量子信息容量提供了新的自由度。然而,目前的轨道角动量实验仍依赖于笨重、昂贵且响应缓慢的衍射或折射光学元件,这阻碍了当今轨道角动量系统的大规模应用。在过去十年中,纳米光子学改变了光子设计,并揭示了一系列利用轨道角动量模式的产生和检测的紧凑且多功能的纳米光子器件。总结了最近为在实空间和动量空间中产生轨道角动量而开发的超表面器件,介绍了其设计原理和典型器件。此外,还总结了基于回音壁模式的无源和可调微腔的最新进展,这些微腔能够提取简并轨道角动量模式用于片上涡旋发射和激光发射。此外,还讨论了最近为片上轨道角动量检测而开发的不同等离子体器件和光电探测器的设计原理。进一步讨论了纳米光子学领域在扭曲光操纵方面面临的当前挑战以及应对这些挑战的未来进展。人们相信,纳米光子学中的扭曲光操纵将继续对超紧凑、超高容量和超高速片上轨道角动量系统的未来发展产生重大影响。

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