Physics-informed Neural Operators for Predicting 3D Electromagnetic Fields Transformed by Metasurfaces
Orkun Furat, Vinay Chakravarthi Gogineni, Henrik Bindslev, Esmaeil S. Nadimi

TL;DR
This paper introduces physics-informed neural operators as fast, accurate surrogate models for predicting 3D electromagnetic fields transformed by metasurfaces, significantly reducing computational costs in design processes.
Contribution
The work develops a neural operator-based surrogate model trained with physics-informed loss to efficiently predict 3D EM fields for metasurfaces, outperforming traditional simulations in speed and accuracy.
Findings
Achieves 3.9% relative error in diffraction efficiency predictions.
Provides a 67-fold speedup over conventional 3D simulations.
Effective across diverse metasurface geometries, including unseen types.
Abstract
Metasurfaces, typically realized as arrays of nanopillars, transform electromagnetic (EM) fields depending on their geometry and spatial arrangement. For solving the inverse problem of designing new metasurfaces that transform EM fields in a desirable manner, it is often necessary to explore large design spaces through full-wave simulations that can be computationally demanding. In this work, we demonstrate that neural operators, which are artificial neural network architectures designed to learn operators between function spaces, can effectively approximate the differential operators underlying Maxwell's equations, enabling their use as fast and accurate 3D surrogate models that can predict 3D EM fields transformed by metasurfaces. To calibrate neural operators, we generate synthetic training data consisting of 3D metasurface geometries together with their associated 3D EM fields…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Acoustic Wave Phenomena Research · Advanced Antenna and Metasurface Technologies
