arXiv · 2512.12625
Deep-learning-enabled inverse design of large-scale metasurfaces with full-wave accuracy
Abstract
Recent advances in meta-optics have enabled diverse functionalities in compact optical devices; however, conventional forward design approaches become inadequate as device complexity and scale grow. Inverse design offers a powerful alternative but often requires massive computational resources and neglects mutual coupling effects. Here, we propose and experimentally validate a deep-learning-enabled framework for rapid inverse design of large-scale, aperiodic metasurfaces with full-wave accuracy.The framework integrates an inverse design network responsible that maps target near-field responses to metasurface geometries in a non-iterative and scalable manner. A lightweight forward prediction network, integrated as a full-wave solver surrogate within the framework, enables efficient end-to-end training of the inverse design network while capturing mutual coupling effects by considering both local and neighboring geometries.The framework's effectiveness is experimentally verified through a multi-foci metalens and a holographic metasurface. This framework enables the inverse design from micrometer to centimeter scales (> 20k{\lambda}), with near-field responses discrepancies less than 3% compared to full-wave solvers at subwavelength (< {\lambda}/10) resolution.Moreover, it is generalizable to metasurfaces of arbitrary size and operates efficiently without high-performance resources, overcoming the computational bottlenecks of previous inverse design methods.
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Borui Xu, Jingzhu Shao, Xiangyu Zhao, Haishan Xu, Yudong Tian, Nanxi Chen, Jielin Sun, Han Lin, Qiaoliang Bao, Yiyong Mai, Chongzhao Wu. 2025-12-14. Deep-learning-enabled inverse design of large-scale metasurfaces with full-wave accuracy. https://arxiv.org/abs/2512.12625
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