Journal of Terahertz Science and Electronic Information Technology , Volume. 23, Issue 6, 625(2025)

Multi-functional metasurface inverse design method based on Ultra-Wideband Spectrum prediction neural network

LI Yong1, ZHANG Yu2, YANG Guohui1、*, FU Jiahui1, ZHANG Kuang1, YUAN Yueyi1, and LI Yingsong3
Author Affiliations
  • 1School of Electronic and Information Engineering, Harbin Institute of Technology, Harbin Heilongjiang 150001, China
  • 2National Key Laboratory of Tunable Laser Technology, Harbin Institute of Technology, Harbin Heilongjiang 150001, China
  • 3School of Electronic and Information Engineering, Anhui University, Hefei Anhui 230000, China
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    Metasurfaces have demonstrated extensive application potential in multiple fields. During the design of metasurfaces, it is necessary to optimize the components based on factors such as polarization, amplitude distribution, and phase distribution. This process typically requires the involvement of experts and is time-consuming. A method is proposed for inverse design of components that integrates high-precision ultra-wideband spectral forward prediction using neural networks and genetic algorithms. This method can simultaneously predict the amplitude and phase of a 16×16 high-degree-of-freedom discrete grid structure within the frequency range of 0.5~2 THz. The amplitude prediction accuracy can reach 0.019, and the phase prediction accuracy can reach 4.332°. The average optimization time for a single metasurface unit is 1.5 min. Two sets of 3 bit frequency-multiplexed and polarization-multiplexed metasurfaces are designed and simulated, and the simulation results validate the effectiveness of the proposed method. The method provides a new paradigm for the rapid design of components facing complex application scenarios and is of significant reference value to metasurface designers.

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    LI Yong, ZHANG Yu, YANG Guohui, FU Jiahui, ZHANG Kuang, YUAN Yueyi, LI Yingsong. Multi-functional metasurface inverse design method based on Ultra-Wideband Spectrum prediction neural network[J]. Journal of Terahertz Science and Electronic Information Technology , 2025, 23(6): 625

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    Paper Information

    Category:

    Received: Nov. 17, 2023

    Accepted: Jul. 30, 2025

    Published Online: Jul. 30, 2025

    The Author Email: YANG Guohui (h.yang@hit.edu.cn)

    DOI:10.11805/tkyda2023375

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