Advanced Numerical Modeling Methods for the Characterization and Optimization of Metasurfaces

M. Binois, R. Duvigneau, M. Elsawy, P. Genevet, Samira Kadhir, St'ephane Lanteri, Nicolas Lebbe
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Abstract

The last 10 years have witnessed an impressive amount of works aiming at the development of thin metamaterials for controlling the wavefront of light, and thus realize planar photonics also referred as flat optics or metaoptics. The concept of metasurface is at the heart of almost all the discoveries in this domain. Metasurfaces are arrays of subwavelength-spaced and optically thin optical elements, which enable new physics and phenomena that are distinctly different from those observed in three-dimensional bulk metamaterials. We present here our recent activities and achievements in relation with the design of metasurfaces, which are concerned with two topics: on one hand, we study numerical characterization approaches that are well suited to the multiscale nature of metasurfaces; on the other hand, we develop inverse design strategies for discovering non-classical metasurface configurations for a target optical functionality. These two topics are addressed in the context of a multidisciplinary collaborative project, which involve computational scientists and physicists. In particular, we apply the proposed numerical methodologies to the design of phase gradient metasurfaces and light front shaping metalenses. In some cases, the numerically designed metasurfaces have been frabricated and experimentally characterized to confirm their predicted performances.
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超表面表征与优化的先进数值模拟方法
在过去的十年里,人们进行了大量的研究工作,旨在开发薄的超材料来控制光的波前,从而实现平面光子学,也称为平面光学或元光学。超表面的概念是这个领域几乎所有发现的核心。超表面是亚波长间隔和光学薄光学元件的阵列,它使新的物理和现象与在三维块体超材料中观察到的明显不同。在此,我们介绍了我们最近在与元表面设计相关的活动和成就,这涉及两个主题:一方面,我们研究了非常适合元表面多尺度性质的数值表征方法;另一方面,我们开发了用于发现目标光学功能的非经典超表面配置的逆设计策略。这两个主题是在一个涉及计算科学家和物理学家的多学科合作项目的背景下解决的。特别地,我们将提出的数值方法应用于相位梯度超表面和光前整形超透镜的设计。在某些情况下,数值设计的超表面已被制作和实验表征,以证实其预测的性能。
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