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高折射率介质超表面的集体光子响应

Collective photonic response of high refractive index dielectric metasurfaces.

作者信息

Amanaganti Sushanth Reddy, Ravnik Miha, Dontabhaktuni Jayasri

机构信息

Mahindra Ecole Centrale, Hyderabad, India.

Faculty of Mathematics and Physics, University of Ljubljana, 1000, Ljubljana, Slovenia.

出版信息

Sci Rep. 2020 Sep 24;10(1):15599. doi: 10.1038/s41598-020-72675-3.

Abstract

Sub-wavelength periodic nanostructures give rise to interesting optical phenomena like effective refractive index, perfect absorption, cloaking, etc. However, such structures are usually metallic which results in high dissipative losses and limitations for use; therefore, dielectric nanostructures are increasingly considered as a strong alternative to plasmonic (metallic) materials. In this work, we show light-matter interaction in a high refractive index dielectric metasurface consisting of an array of cubic dielectric nano-structures made of very high refractive index material, Te in air, using computer modelling. We observe a distinct band-like structure in both transmission and reflection spectra resulting from the near-field coupling of the field modes from neighboring dielectric structures followed by a sharp peak in the transmission at higher frequencies. From the spatial distribution of the electric and magnetic fields and a detailed multipole analysis in both spherical harmonics and Cartesian components, the dominant resonant modes are identified to be electric and magnetic dipoles. Specifically at lower frequency (60 THz) a novel anapole-like state characterized by strong-suppression in reflection and absorption is observed, reported very recently as 'lattice-invisibility' state. Differently, at higher frequency (62 THz), strong absorption and near-zero far field scattering are observed, which combined with the field profiles and the multipole analysis of the near-fields indicate the excitation of an anapole. Notably the observed novel modes occur in the simple geometry of dielectric cubes and are a result of collective response of the metasurfaces. Periodicity of the cubic metasurface is shown as the significant material tuning parameter, allowing for the near-field and far-field coupling effects of anapole metasurface. More generally, our work is a contribution towards developing far-fetching applications based on metamaterials such as integrated devices and waveguides consisting of non-radiating modes.

摘要

亚波长周期性纳米结构会引发一些有趣的光学现象,如有效折射率、完美吸收、隐形等。然而,此类结构通常是金属性的,这会导致高耗散损耗以及使用上的限制;因此,介电纳米结构越来越被视为等离子体(金属)材料的有力替代品。在这项工作中,我们利用计算机建模展示了在由空气中极高折射率材料碲制成的立方介电纳米结构阵列组成的高折射率介电超表面中的光与物质相互作用。我们在透射和反射光谱中均观察到一种独特的带状结构,这是由相邻介电结构的场模近场耦合导致的,随后在较高频率处透射出现一个尖锐峰值。通过电场和磁场的空间分布以及在球谐函数和笛卡尔分量中的详细多极分析,确定主导共振模式为电偶极子和磁偶极子。具体而言,在较低频率(60太赫兹)时,观察到一种以反射和吸收中的强抑制为特征的新型类无辐射极子态,最近被报道为“晶格隐形”态。不同的是,在较高频率(62太赫兹)时,观察到强吸收和近零远场散射,结合场分布和近场的多极分析表明激发了一个无辐射极子。值得注意的是,所观察到的新型模式出现在介电立方体的简单几何结构中,并且是超表面集体响应的结果。立方超表面的周期性被证明是重要的材料调谐参数,它允许无辐射极子超表面的近场和远场耦合效应。更一般地说,我们的工作有助于基于超材料开发诸如由非辐射模式组成的集成器件和波导等远期应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d737/7518431/86f82b388034/41598_2020_72675_Fig1_HTML.jpg

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