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基于优化的介电超表面用于角度选择性多功能光束偏转

Optimization-based Dielectric Metasurfaces for Angle-Selective Multifunctional Beam Deflection.

作者信息

Cheng Jierong, Inampudi Sandeep, Mosallaei Hossein

机构信息

Institute of Modern Optics, Nankai University, Key Laboratory of Optical Information Science and Technology, Ministry of Education, Tianjin, 300071, China.

Department of Electrical and Computer Engineering, Northeastern University, 360 Huntington Ave, Boston, Massachusetts, 02115, USA.

出版信息

Sci Rep. 2017 Sep 25;7(1):12228. doi: 10.1038/s41598-017-12541-x.

Abstract

Synthesization of multiple functionalities over a flat metasurface platform offers a promising approach to achieving integrated photonic devices with minimized footprint. Metasurfaces capable of diverse wavefront shaping according to wavelengths and polarizations have been demonstrated. Here we propose a class of angle-selective metasurfaces, over which beams are reflected following different and independent phase gradients in the light of the beam direction. Such powerful feature is achieved by leveraging the local phase modulation and the non-local lattice diffraction via inverse scattered field and geometry optimization in a monolayer dielectric grating, whereas most of the previous designs utilize the local phase modulation only and operate optimally for a specific angle. Beam combiner/splitter and independent multibeam deflections with up to 4 incident angles are numerically demonstrated respectively at the wavelength of 700 nm. The deflection efficiency is around 45% due to the material loss and the compromise of multi-angle responses. Flexibility of the approach is further validated by additional designs of angle-switchable metagratings as splitter/reflector and transparent/opaque mirror. The proposed designs hold great potential for increasing information density of compact optical components from the degree of freedom of angle.

摘要

在平面超表面平台上合成多种功能为实现占地面积最小的集成光子器件提供了一种很有前景的方法。已经展示了能够根据波长和偏振进行不同波前整形的超表面。在此,我们提出一类角度选择性超表面,在其上光束根据光束方向按照不同且独立的相位梯度被反射。这种强大的特性是通过在单层介质光栅中利用逆散射场和几何优化的局部相位调制以及非局部晶格衍射来实现的,而大多数先前的设计仅利用局部相位调制并且在特定角度下最优运行。在700nm波长处分别通过数值演示了光束组合器/分离器以及具有多达4个入射角的独立多光束偏转。由于材料损耗和多角度响应的折衷,偏转效率约为45%。角度可切换超光栅作为分离器/反射器和透明/不透明镜的额外设计进一步验证了该方法的灵活性。所提出的设计从角度自由度方面来看,在增加紧凑型光学元件的信息密度方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccb7/5613029/97ee3efc7f59/41598_2017_12541_Fig1_HTML.jpg

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