Neural Network-Assisted End-to-End Design for Dispersive Full-Parameter Control of Meta-Optics
Hanbin Chi, Yueqiang Hu, Xiangnian Ou, Yuting Jiang, Dian Yu, Shaozhen, Lou, Quan Wang, Qiong Xie, Cheng-Wei Qiu, and Huigao Duan

TL;DR
This paper introduces a neural network-assisted end-to-end inverse design framework for meta-optics, enabling full-parameter control across multiple wavelengths and polarizations, surpassing traditional methods in quality and capacity.
Contribution
The paper presents a universal, differentiable inverse design framework integrating neural networks for dispersive full-parameter control of meta-optics across multiple wavelengths and polarizations.
Findings
Achieves higher quality dual-polarization color holography.
Demonstrates tri-polarization 3D color holography with increased multiplexing.
Enables polarized spectral multi-information processing across three wavelengths.
Abstract
Flexible control light field across multiple parameters is the cornerstone of versatile and miniaturized optical devices. Metasurfaces, comprising subwavelength scatterers, offer a potent platform for executing such precise manipulations. However, the inherent mutual constraints between parameters of metasurfaces make it challenging for traditional approaches to achieve full-parameter control across multiple wavelengths. Here, we propose a universal end-to-end inverse design framework to directly optimize the geometric parameter layout of meta-optics based on the target functionality of full-parameter control across multiple wavelengths. This framework employs a differentiable forward simulator integrating a neural network-based dispersive full-parameter Jones matrix and Fourier propagation to facilitate gradient-based optimization. Its superiority over sequential forward designs in…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Orbital Angular Momentum in Optics · Plasmonic and Surface Plasmon Research
