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基于分介质纳米谐振器中磁偶极共振调控的惠更斯超表面。

Huygens' Metasurfaces Enabled by Magnetic Dipole Resonance Tuning in Split Dielectric Nanoresonators.

机构信息

Sandia National Laboratories , Albuquerque, New Mexico 87185, United States.

Institute of Applied Physics, Abbe Center of Photonics, Friedrich Schiller University Jena , Albert-Einstein-Str. 15, 07745 Jena, Germany.

出版信息

Nano Lett. 2017 Jul 12;17(7):4297-4303. doi: 10.1021/acs.nanolett.7b01301. Epub 2017 Jun 13.

Abstract

Dielectric metasurfaces that exploit the different Mie resonances of nanoscale dielectric resonators are a powerful platform for manipulating electromagnetic fields and can provide novel optical behavior. In this work, we experimentally demonstrate independent tuning of the magnetic dipole resonances relative to the electric dipole resonances of split dielectric resonators (SDRs). By increasing the split dimension, we observe a blue shift of the magnetic dipole resonance toward the electric dipole resonance. Therefore, SDRs provide the ability to directly control the interaction between the two dipole resonances within the same resonator. For example, we achieve the first Kerker condition by spectrally overlapping the electric and magnetic dipole resonances and observe significantly suppressed backward scattering. Moreover, we show that a single SDR can be used as an optical nanoantenna that provides strong unidirectional emission from an electric dipole source.

摘要

利用纳米级介电谐振器的不同 Mie 共振的介电超表面是一种强大的操控电磁场的平台,并能提供新颖的光学行为。在这项工作中,我们实验演示了独立调节分裂介电谐振器(SDR)的磁偶极共振相对于电偶极共振。通过增加分裂尺寸,我们观察到磁偶极共振向电偶极共振的蓝移。因此,SDR 提供了在同一谐振器内直接控制两个偶极共振相互作用的能力。例如,我们通过光谱重叠电偶极和磁偶极共振实现了第一个 Kerker 条件,并观察到显著抑制的后向散射。此外,我们表明单个 SDR 可用作光学纳米天线,可从电偶极源提供强单向发射。

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