实现大面积高性能光学超表面:从设计角度综述

Minseok Choi, Junkyeong Park, Jehyeon Shin, Harit Keawmuang, Hongyoon Kim, Jooyeong Yun, Junhwa Seong, Junsuk Rho
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引用次数: 0

摘要

近年来,光学超表面的设计取得了显著进步,尤其是在紧凑型设计方面。然而,为了将其实际集成到各种光学系统中,迫切需要在不影响其性能的前提下将元表面过渡到更大的面积。从设计的角度来看,设计过程中的努力必须集中在降低计算成本和提高大面积性能上。在本综述中,我们将介绍适用于大面积的各种光学分析方法,包括修改边界条件、快速多极方法、耦合模式理论和基于神经网络的方法。此外,还介绍了适用于大规模设计的基于邻接法或深度学习的逆设计方法。大量快速、精确的模拟方法使得以低成本评估大面积光学特性成为可能,而多种多样的逆设计方法则有望实现高性能。通过同时解决设计大面积元表面的两个重要方面,我们全面讨论了开发大面积高性能元表面的各种方法。最后,我们概述了实现大规模生产高性能元表面的其他挑战和前景,以充分释放其在光学应用方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Realization of high-performance optical metasurfaces over a large area: a review from a design perspective

Realization of high-performance optical metasurfaces over a large area: a review from a design perspective
Remarkable advancements have been made in the design of optical metasurfaces in recent years, particularly in compact designs. However, for their practical integration into diverse optical systems, there is a pressing need for metasurfaces to transition toward larger areas without compromising their performance. From a design perspective, efforts in the design process must focus on reducing computational costs and enhancing performance in larger areas. In this review, we introduce diverse optical analyses applicable to wide areas, including the modification of boundary conditions, fast multipole methods, coupled mode theory, and neural network–based approaches. In addition, inverse design methods based on the adjoint method or deep learning, which are suitable for large-scale designs, are described. Numerous fast and accurate simulation methods make it possible to assess optical properties over large areas at a low cost, whereas diverse inverse design methods hold promise for high performance. By concurrently addressing both the essential aspects of designing large-area metasurfaces, we comprehensively discuss various approaches to develop metasurfaces with high performance over expansive regions. Finally, we outline additional challenges and prospects for realizing mass-produced high-performance metasurfaces, unlocking their full potential for optical applications.
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