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Two-Dimensional Optical Metasurfaces: From Plasmons to Dielectrics

机译:二维光学元件:从等离子体到电介质

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Metasurfaces, kinds of planar ultrathin metamaterials, are able to modify the polarization, phase, and amplitude of physical fields of optical light by designed periodic subwavelength structures, attracting great interest in recent years. Based on the different type of the material, optical metasurfaces can be separated in two categories by the materials: one is metal and the other is dielectric. Metal metasurfaces rely on the surface plasma oscillations of subwavelength metal particles. Nevertheless, the loss caused by the metal structures has been a trouble, especially for devices working in transmit modes. The dielectric metasurfaces are based on the Faraday-Tyndall scattering of high-index dielectric light scattering particles. By reasonably designing the relevant parameters of the unit structure such as the size, direction, and shape, different functions of metasurfaces can realize and bring a wide range of applications. This article focuses on the metasurface concepts such as anomalous reflections and refractions and the working principle of different types of metasurfaces. Here, we briefly review the progress in developing optical over past few years and look into the near future.
机译:Metasurfaces,各种平面超超材料,通过设计周期性的亚波长结构,可以通过设计的周期性亚主波长来修改光学光的偏振,相位和幅度,近年来吸引极大的兴趣。基于不同类型的材料,光学元件可以通过材料分两类分离:一个是金属,另一个是电介质。金属元胶依赖于亚波长金属颗粒的表面等离子体振荡。然而,由金属结构引起的损失是麻烦的,特别是对于在传输模式下工作的设备。电介质元件基于高焦点介电光散射颗粒的法拉第-Tyndall散射。通过合理地设计单位结构的相关参数,例如尺寸,方向和形状,Metasurfaces的不同功能可以实现并带来广泛的应用。本文重点介绍了解诸如异常反射和折射等不同类型元敷料的工作原理。在这里,我们简要介绍了过去几年中开发光学的进展,并研究了不久的将来。

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