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High-efficiency, broadband, and wide-angle all-dielectric quarter wave plate based on anisotropic electric and magnetic dipole resonances

机译:基于各向异性电动偶极子共振的高效率,宽带和广角和广角全介电四分之一波片

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摘要

Metadevices based on dielectric nanostructure with excitation of electric and magnetic resonances have shown high efficiency for polarization control compared with conventional manipulation methods, as well as plasmonic structure metadevices. Since both the electric and magnetic dipole (MD) resonances can be precisely adjusted by optimizing geometric parameters of the resonators to meet the desired wavelength, this paper proposes an approach to implement the high transmittance metadevices operating at preferred wavelengths. By employing this method, we demonstrate an all-dielectric quarter wave plate (QWP) metasurface with high transmittance (85%) and high polarization conversion efficiency (0.88) in a broad telecom waveband. At the same time, conversion efficiency is nearly unaffected for incident angles within 75 degrees. With features of high transmittance, wide angle, and invertible linear to circular polarization conversion, the all dielectric QWP can be a good replacement for plasmonic metasurface devices and offers a further step in developing polarization and phase manipulation rnetadevices. (C) 2019 Optical Society of America
机译:基于电介质纳米结构的电和磁共振的电纳米结构表明了与传统操作方法相比的偏振控制效率高,以及等离子体结构元。由于可以通过优化谐振器的几何参数来精确调整电磁偶极子(MD)谐振,以满足所需的波长,因此提出了一种实现在优选波长下操作的高透射等元的方法。通过采用这种方法,我们展示了一种具有高透射率(& 85%)和高电信波带中的高透射率(& 0.88)的全介电四分之一波片(qwp)元表面。同时,转换效率几乎不受事件角度在75度内的影响。通过具有高透射率,广角和可逆线性的圆形偏振转换的特征,所有电介质QWP都可以对等离子体元表面装置提供良好的替代品,并且在开发极化和相位操纵RnetAdefice中提供进一步的步骤。 (c)2019年光学学会

著录项

  • 来源
    《Applied optics》 |2019年第4期|共5页
  • 作者

    Yang Jiaqi; Lan Tian;

  • 作者单位

    Beijing Inst Technol Key Lab Photoelectr Imaging Technol &

    Syst Beijing Key Lab Precis Optoelect Measurement Inst Sch Opt &

    Photon Beijing 100081 Peoples R China;

    Beijing Inst Technol Key Lab Photoelectr Imaging Technol &

    Syst Beijing Key Lab Precis Optoelect Measurement Inst Sch Opt &

    Photon Beijing 100081 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
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