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利用非线性超表面重构结构光束。

Reconfiguring structured light beams using nonlinear metasurfaces.

作者信息

Xu Yun, Sun Jingbo, Frantz Jesse, Shalaev Mikhail I, Walasik Wiktor, Pandey Apra, Myers Jason D, Bekele Robel Y, Tsukernik Alexander, Sanghera Jasbinder S, Litchinitser Natalia M

出版信息

Opt Express. 2018 Nov 12;26(23):30930-30943. doi: 10.1364/OE.26.030930.

DOI:10.1364/OE.26.030930
PMID:30469983
Abstract

Ultra-compact, low-loss, fast, and reconfigurable optical components, enabling manipulation of light by light, could open numerous opportunities for controlling light on the nanoscale. Nanostructured all-dielectric metasurfaces have been shown to enable extensive control of amplitude and phase of light in the linear optical regime. Among other functionalities, they offer unique opportunities for shaping the wave front of light to introduce the orbital angular momentum (OAM) to a beam. Such structured light beams bring a new degree of freedom for applications ranging from spectroscopy and micromanipulation to classical and quantum optical communications. To date, reconfigurability or tuning of the optical properties of all-dielectric metasurfaces have been achieved mechanically, thermally, electrically or optically, using phase-change or nonlinear optical materials. However, a majority of demonstrated tuning approaches are either slow or require high optical powers. Arsenic trisulfide (AsS) chalcogenide glass offering ultra-fast and large χnonlinearity as well as a low two-photon absorption coefficient in the near and mid-wave infrared spectral range, could provide a new platform for the realization of fast and relatively low intensity reconfigurable metasurfaces. Here, we design and experimentally demonstrate an AsS chalcogenide glass based metasurface that enables reshaping of a conventional Hermite-Gaussian beam with no OAM into an OAM beam at low intensity levels, while preserves the original beam's amplitude and phase characteristics at high intensity levels. The proposed metasurface could find applications for a new generation of optical communication systems and optical signal processing.

摘要

超紧凑、低损耗、快速且可重构的光学元件,能够实现光对光的操控,可为纳米尺度上的光控制带来众多机遇。纳米结构的全介质超表面已被证明能够在线性光学区域对光的幅度和相位进行广泛控制。在其他功能中,它们为塑造光波前以将轨道角动量(OAM)引入光束提供了独特机遇。这种结构化光束为从光谱学和微操纵到经典和量子光通信等一系列应用带来了新的自由度。迄今为止,全介质超表面光学特性的可重构性或调谐已通过机械、热、电或光的方式,利用相变或非线性光学材料得以实现。然而,大多数已证明的调谐方法要么速度慢,要么需要高光学功率。三硫化二砷(AsS)硫系玻璃在近红外和中红外光谱范围内具有超快且大的χ非线性以及低双光子吸收系数,可为实现快速且相对低强度的可重构超表面提供一个新平台。在此,我们设计并通过实验证明了一种基于AsS硫系玻璃的超表面,它能够在低强度水平下将没有OAM的传统厄米 - 高斯光束重塑为OAM光束,同时在高强度水平下保留原始光束的幅度和相位特性。所提出的超表面可用于新一代光通信系统和光信号处理。

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