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用于准直光束整形的非成像超表面设计。

Non-imaging metasurface design for collimated beam shaping.

作者信息

Nielsen Kirstine E S, Carlsen Mads A, Zambrana-Puyalto Xavier, Raza Søren

出版信息

Opt Express. 2023 Nov 6;31(23):37861-37870. doi: 10.1364/OE.504595.

Abstract

Non-imaging optical lenses can shape the light intensity from incoherent sources to a desired target intensity profile, which is important for applications in lighting, solar light concentration, and optical beam shaping. Their surface curvatures are designed to ensure optimal transfer of energy from the light source to the target. The performance of such lenses is directly linked to their asymmetric freeform surface curvature, which is challenging to manufacture. Metasurfaces can mimic any surface curvature without additional fabrication difficulty by imparting a spatially-dependent phase delay using optical antennas. As a result, metasurfaces are uniquely suited to realize non-imaging optics, but non-imaging design principles have not yet been established for metasurfaces. Here, we take an important step in connecting non-imaging optics and metasurface optics, by presenting a phase-design method for beam shaping based on the concept of optimal transport. We establish a theoretical framework that enables a collimated beam to be redistributed by a metasurface to a desired output intensity profile. The optimal transport formulation leads to metasurface phase profiles that transmit all energy from the incident beam to the output beam, resulting in an efficient beam shaping process. Through a variety of examples, we show that our approach accommodates a diverse range of different input and output intensity profiles. Last but not least, a full field simulation of a metasurface has been done to verify our phase-design framework.

摘要

非成像光学透镜可以将来自非相干光源的光强整形为所需的目标强度分布,这对于照明、太阳光聚光和光束整形等应用非常重要。其表面曲率经过设计,以确保能量从光源到目标的最佳传输。此类透镜的性能直接与其不对称的自由曲面曲率相关,而这种曲率的制造具有挑战性。超表面可以通过使用光学天线赋予空间相关的相位延迟来模拟任何表面曲率,而无需额外的制造困难。因此,超表面特别适合实现非成像光学,但尚未为超表面建立非成像设计原理。在此,我们通过提出一种基于最优传输概念的光束整形相位设计方法,在连接非成像光学和超表面光学方面迈出了重要一步。我们建立了一个理论框架,使准直光束能够通过超表面重新分布为所需的输出强度分布。最优传输公式导致超表面相位分布将入射光束的所有能量传输到输出光束,从而实现高效的光束整形过程。通过各种示例,我们表明我们的方法适用于各种不同的输入和输出强度分布。最后但同样重要的是,已经对超表面进行了全场模拟,以验证我们的相位设计框架。

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