Hassan Karim, Dallery Jacques-Alexandre, Brianceau Pierre, Boutami Salim
Université Grenoble Alpes, CEA, LETI, Minatec Campus, F-38054, Grenoble, France.
Vistec Electron Beam GmbH, Jena, 07743, Germany.
Sci Rep. 2020 Jan 24;10(1):1123. doi: 10.1038/s41598-020-58029-z.
In this article, we report an integrated optical nanolens exhibiting a pseudo-graded index distribution in a guided configuration. This dielectric metalens relies on a permittivity distribution through dielectric strips of the core material, which is compatible with existing silicon photonic technology. We show in this paper that effective medium theory (EMT) inaccurately predicts the focal length of such devices, and we propose an efficient and accurate design approach based on 2D finite element method (FEM) mode calculations that are in good agreement with 3D FDTD simulations. The lens was fabricated on a 200 mm silicon on insulator pilot line, and fibre-to-fibre optical characterizations revealed an excellent transmission of 85% for TM polarization, in line with the simulated performance (90%). The proposed approach can be easily extended to width-variable strips, enabling the realization of all types of graded index devices, especially those derived from transformation optics.
在本文中,我们报道了一种集成光学纳米透镜,它在波导配置中呈现出伪渐变折射率分布。这种介电超透镜依赖于通过核心材料的介电条带的介电常数分布,这与现有的硅光子技术兼容。我们在本文中表明,有效介质理论(EMT)不准确地预测了此类器件的焦距,并且我们基于二维有限元方法(FEM)模式计算提出了一种高效且准确的设计方法,该方法与三维时域有限差分(FDTD)模拟结果高度吻合。该透镜是在200毫米绝缘体上硅试验线上制造的,光纤到光纤的光学特性表明,对于TM偏振,其传输率高达85%,与模拟性能(90%)相符。所提出的方法可以很容易地扩展到宽度可变的条带,从而能够实现所有类型的渐变折射率器件,尤其是那些源自变换光学的器件。