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基于具有液晶增强腔模式转换的相位梯度超表面的太赫兹主动光束偏转。

Active terahertz beam deflection based on a phase gradient metasurface with liquid crystal-enhanced cavity mode conversion.

出版信息

Opt Express. 2023 Jan 16;31(2):1269-1281. doi: 10.1364/OE.479856.

Abstract

Active manipulation of terahertz (THz) beam deflection and intensity is highly desired for possible applications in wireless communication, radar, and remote sensing. Here, by integrating the phase-gradient metasurfaces and tunable liquid crystal materials, we demonstrate an active THz beam deflection device based on polarization mode conversion. The resonant modes in the photonic cavity formed by the double-layer metasurface and the tunable anisotropic liquid crystal material in the cavity not only improve the polarization conversion efficiency of the device, but also actively regulate the resonance matching conditions. As a consequence, a beam deflection of 47.5° with 50% diffraction intensity at 0.69 THz is achieved in the x-to-y polarization conversion mode, and this beam can be actively modulated with an ultrahigh modulation depth of 99.6% by rotating the anisotropic optical axis of liquid crystals. Moreover, the proposed device can also work as the deflection of 32.5° in the y-to-x polarization conversion mode at 0.94 THz with a maximum diffraction intensity of 38% and an intensity modulation depth of 97.8%. This work provides a new approach based on liquid crystal photonic devices for wavefront manipulation and active modulation for THz waves.

摘要

主动操控太赫兹(THz)波束的偏转和强度,对于无线通信、雷达和遥感等应用具有重要意义。在这里,我们通过集成相位梯度超表面和可调谐液晶材料,展示了一种基于偏振模式转换的主动 THz 波束偏转器件。由双层超表面和腔内可调各向异性液晶材料形成的光子腔中的共振模式不仅提高了器件的偏振转换效率,而且还可以主动调节共振匹配条件。因此,在 x 到 y 偏振转换模式下,在 0.69 THz 处实现了 47.5°的波束偏转角和 50%的衍射强度,通过旋转各向异性液晶的光轴,可以实现高达 99.6%的超高调制深度的波束主动调制。此外,该器件还可以在 0.94 THz 处的 y 到 x 偏振转换模式下实现 32.5°的偏转,最大衍射强度为 38%,强度调制深度为 97.8%。这项工作为太赫兹波的波前操控和主动调制提供了一种基于液晶光子器件的新方法。

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