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◆ Cell Reports Physical Science2026-03-01· Physics

Inverse design of metamaterials with manufacturing-guiding spectrum-to-structure conditional diffusion model

Jiawen Li, Jiang Guo, Yuanzhe Li, Zetian Mao, Jiaxing Shen, T. Xu, Diptesh Das, Jingyu He, Run Hu, Yaerim Lee, Koji Tsuda, Junichiro Shiomi

原始摘要(英文原文)· Original abstract
Metamaterials are artificially engineered structures that manipulate electromagnetic waves, exhibiting optical properties absent in natural materials. Recently, machine learning for the inverse design of metamaterials has drawn attention. However, the highly nonlinear relationship between metamaterial structures and optical behavior, coupled with fabrication difficulties, poses challenges for using machine learning to design and manufacture complex metamaterials. Herein, we propose a general framework that implements customized spectrum-to-shape and size parameters to address one-to-many metamaterial inverse design problems using conditional diffusion models. Our method exhibits superior spectral prediction accuracy, generates a diverse range of patterns compared to other typical generative models, and offers valuable prior knowledge for manufacturing through subsequent analysis of the diverse generated results, thereby facilitating the experimental fabrication of metamaterial designs. We demonstrate the efficacy of the proposed method by successfully designing and fabricating a free-form metamaterial with a tailored selective emission spectrum for thermal camouflage applications.
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