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使用低损耗光学相变材料的电可重构非易失性超表面

Electrically reconfigurable non-volatile metasurface using low-loss optical phase-change material.

作者信息

Zhang Yifei, Fowler Clayton, Liang Junhao, Azhar Bilal, Shalaginov Mikhail Y, Deckoff-Jones Skylar, An Sensong, Chou Jeffrey B, Roberts Christopher M, Liberman Vladimir, Kang Myungkoo, Ríos Carlos, Richardson Kathleen A, Rivero-Baleine Clara, Gu Tian, Zhang Hualiang, Hu Juejun

机构信息

Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.

Department of Electrical and Computer Engineering, University of Massachusetts Lowell, Lowell, MA, USA.

出版信息

Nat Nanotechnol. 2021 Jun;16(6):661-666. doi: 10.1038/s41565-021-00881-9. Epub 2021 Apr 19.

Abstract

Active metasurfaces promise reconfigurable optics with drastically improved compactness, ruggedness, manufacturability and functionality compared to their traditional bulk counterparts. Optical phase-change materials (PCMs) offer an appealing material solution for active metasurface devices with their large index contrast and non-volatile switching characteristics. Here we report a large-scale, electrically reconfigurable non-volatile metasurface platform based on optical PCMs. The optical PCM alloy used in the devices, GeSbSeTe (GSST), uniquely combines giant non-volatile index modulation capability, broadband low optical loss and a large reversible switching volume, enabling notably enhanced light-matter interactions within the active optical PCM medium. Capitalizing on these favourable attributes, we demonstrated quasi-continuously tuneable active metasurfaces with record half-octave spectral tuning range and large optical contrast of over 400%. We further prototyped a polarization-insensitive phase-gradient metasurface to realize dynamic optical beam steering.

摘要

有源超表面有望实现可重构光学,与传统的块状光学器件相比,其紧凑性、坚固性、可制造性和功能性都有显著提升。光学相变材料(PCM)具有较大的折射率对比度和非易失性切换特性,为有源超表面器件提供了一种有吸引力的材料解决方案。在此,我们报道了一种基于光学PCM的大规模、电可重构非易失性超表面平台。该器件中使用的光学PCM合金GeSbSeTe(GSST)独特地结合了巨大的非易失性折射率调制能力、宽带低光学损耗和大的可逆切换体积,从而在有源光学PCM介质中显著增强了光与物质的相互作用。利用这些有利特性,我们展示了具有创纪录的半倍频程光谱调谐范围和超过400%的大光学对比度的准连续可调有源超表面。我们还制作了一个偏振不敏感的相位梯度超表面原型,以实现动态光束转向。

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