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Plasmonic metasurfaces with 42.3% transmission efficiency in the visible

机译:等离子超表面在可见光中的传输效率为42.3%

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摘要

Metasurfaces are two-dimensional nanoantenna arrays that can control the propagation of light at will.In particular,plasmonic metasurfaces feature ultrathin thicknesses,ease of fabrication,field confinement beyond the diffraction limit,superior nonlinear properties,and ultrafast performances.However,the technological relevance of plasmonic metasurfaces operating in the transmission mode at optical frequencies is questionable due to their limited efficiency.The state-of-the-art efficiency of geometric plasmonic metasurfaces at visible and near-infrared frequencies,for example,is ≤10%.Here,we report a multipole-interference-based transmission-type geometric plasmonic metasurface with a polarization conversion efficiency that reaches 42.3% at 744 nm,over 400% increase over the state of the art.The efficiency is augmented by breaking the scattering symmetry due to simultaneously approaching the generalized Kerker condition for two orthogonal polarizations.In addition,the design of the metasurface proposed in this study introduces an air gap between the antennas and the surrounding media that confines the field within the gap,which mitigates the crosstalk between meta-atoms and minimizes metallic absorption.The proposed metasurface is broadband,versatile,easy to fabricate,and highly tolerant to fabrication errors.We highlight the technological relevance of our plasmonic metasurface by demonstrating a transmission-type beam deflector and hologram with record efficiencies.
机译:超颖表面是可以随意控制光传播的二维纳米天线阵列。特别是,等离子超颖表面具有超薄的厚度,易于制造,超出衍射极限的磁场限制,优异的非线性特性和超快的性能。但是,技术相关性由于其效率有限,在透射模式下工作的等离子超颖表面的效率受到质疑。例如,在可见和近红外频率下,几何等离子超颖表面的最新效率≤10%。我们报告了一种基于多极干扰的透射型几何等离质子表面,其极化转换效率在744 nm处达到42.3%,比现有技术提高了400%。通过同时消除散射对称性提高了效率逼近两个正交极化的广义Kerker条件。此外,元设计本研究提出的表面引入了天线与周围介质之间的气隙,将气隙限制在该间隙内,从而减轻了亚原子之间的串扰并使金属吸收最小化。拟议的亚表面具有宽带性,多功能性,易于制造且通过展示具有记录效率的透射型光束偏转器和全息图,我们突出了等离子超表面的技术相关性。

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  • 来源
    《光:科学与应用(英文版)》 |2019年第4期|506-518|共13页
  • 作者单位

    The Institute of Optics, University of Rochester, Rochester, NY 14627, USA;

    The Institute of Optics, University of Rochester, Rochester, NY 14627, USA;

    The Institute of Optics, University of Rochester, Rochester, NY 14627, USA;

    The Institute of Optics, University of Rochester, Rochester, NY 14627, USA;

    Changchun Institute of Optics, Fine Mechanics, and Physics, Chinese Academy of Sciences, 130033 Changchun, China;

    The Institute of Optics, University of Rochester, Rochester, NY 14627, USA;

    The Institute of Optics, University of Rochester, Rochester, NY 14627, USA;

    Changchun Institute of Optics, Fine Mechanics, and Physics, Chinese Academy of Sciences, 130033 Changchun, China;

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  • 入库时间 2022-08-19 04:30:04
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