论文标题

一个基于周期性深度学习的框架,用于同时进行纳米光元的逆向设计

A Cyclical Deep Learning Based Framework For Simultaneous Inverse and Forward design of Nanophotonic Metasurfaces

论文作者

Mall, Abhishek, Patil, Abhijeet, Sethi, Amit, Kumar, Anshuman

论文摘要

针对目标电磁响应的纳米光跨表面设计和优化的常规方法涉及探索大的几何形状和材料空间,这在计算上是昂贵的,耗时和基于试验和错误的高度迭代过程。此外,结构设计的非唯一性以及电磁响应和设计之间的高度非线性使这个问题具有挑战性。为了将电磁响应与跨表面结构设计之间的这种非直觉关系建模为设计空间中的概率分布,我们引入了基于周期性深度学习(DL)的基于基于纳米光质量跨越的逆设计的框架。提出的框架对基于DL模型和遗传算法的元图单元作为元图单元的产生和元分子的生成相反设计和优化机制。该框架包括连续的DL模型,这些模型既模拟数值电磁模拟和优化的迭代过程,并生成优化的结构设计,同时同时执行前进和逆设计任务。遗传算法对生成的结构设计进行选择和评估,以构建模拟现实世界响应的所需光学响应和设计空间。重要的是,我们的周期性生成框架还探索了新的跨表面拓扑的空间。作为我们提出的体系结构实用程序的示例应用程序,我们演示了基于间隙 - 平面的半波板元面的逆设计,用于用户定义的光学响应。我们提出的技术很容易被概括用于设计纳米thothtonic的跨膜,以实现广泛的靶向光响应。

The conventional approach to nanophotonic metasurface design and optimization for a targeted electromagnetic response involves exploring large geometry and material spaces, which is computationally costly, time consuming and a highly iterative process based on trial and error. Moreover, the non-uniqueness of structural designs and high non-linearity between electromagnetic response and design makes this problem challenging. To model this non-intuitive relationship between electromagnetic response and metasurface structural design as a probability distribution in the design space, we introduce a cyclical deep learning (DL) based framework for inverse design of nanophotonic metasurfaces. The proposed framework performs inverse design and optimization mechanism for the generation of meta-atoms and meta-molecules as metasurface units based on DL models and genetic algorithm. The framework includes consecutive DL models that emulate both numerical electromagnetic simulation and iterative processes of optimization, and generate optimized structural designs while simultaneously performing forward and inverse design tasks. A selection and evaluation of generated structural designs is performed by the genetic algorithm to construct a desired optical response and design space that mimics real world responses. Importantly, our cyclical generation framework also explores the space of new metasurface topologies. As an example application of utility of our proposed architecture, we demonstrate the inverse design of gap-plasmon based half-wave plate metasurface for user-defined optical response. Our proposed technique can be easily generalized for designing nanophtonic metasurfaces for a wide range of targeted optical response.

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