Wafer-scale conformal metasurface optics

Curved and conformal optics provide additional geometric degrees of freedom that enable enhanced optical performance while satisfying non-optical constraints such as ergonomics, aerodynamics, and wearability. However, existing fabrication approaches for curved metasurfaces are limited in scalability, geometry control, and alignment accuracy. Here we show a scalable fabrication strategy for curved and conformal metasurface optics based on thermoforming, an industry-standard manufacturing process for thermoplastics. Our approach enables wafer-scale production of highly curved metasurfaces with millimeter-level radii of curvature and micron-level alignment precision. We develop a predictive thermorheological model that accurately captures and compensates for the large deformations induced during thermoforming, preserving the intended optical response and enabling diffraction-limited performance. As demonstrations, we realize freestanding curved metalenses, conformal refractive-metasurface hybrid optics, and an artificial compound eye with a wide field of view, reduced aberrations, and uniform imaging performance. These results establish thermoforming as a scalable manufacturing platform for next-generation conformal photonic systems. Researchers developed a scalable thermoforming strategy for wafer-scale curved metasurface optics, enabling high-performance conformal optical devices including hybrid lenses and artificial compound eyes for next-generation photonic systems.

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Publication Details

Journal
Nature Communications
Published
2026-09-18
DOI
https://doi.org/10.1038/s41467-026-77862-w
Primary Topic
Metamaterials and Metasurfaces Applications
Type
article
Field-Weighted Citation Impact
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article

Wafer-scale conformal metasurface optics

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Wafer-scale conformal metasurface optics

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article en

Abstract

Curved and conformal optics provide additional geometric degrees of freedom that enable enhanced optical performance while satisfying non-optical constraints such as ergonomics, aerodynamics, and wearability. However, existing fabrication approaches for curved metasurfaces are limited in scalability, geometry control, and alignment accuracy. Here we show a scalable fabrication strategy for curved and conformal metasurface optics based on thermoforming, an industry-standard manufacturing process for thermoplastics. Our approach enables wafer-scale production of highly curved metasurfaces with millimeter-level radii of curvature and micron-level alignment precision. We develop a predictive thermorheological model that accurately captures and compensates for the large deformations induced during thermoforming, preserving the intended optical response and enabling diffraction-limited performance. As demonstrations, we realize freestanding curved metalenses, conformal refractive-metasurface hybrid optics, and an artificial compound eye with a wide field of view, reduced aberrations, and uniform imaging performance. These results establish thermoforming as a scalable manufacturing platform for next-generation conformal photonic systems. Researchers developed a scalable thermoforming strategy for wafer-scale curved metasurface optics, enabling high-performance conformal optical devices including hybrid lenses and artificial compound eyes for next-generation photonic systems.

Nature Communications
Korea Advanced Institute of Science and Technology (KR), University of Washington (US), Gwangju Institute of Science and Technology (KR), Massachusetts Institute of Technology (US)
U.S. Department of Defense, National Research Foundation of Korea, Defense Advanced Research Projects Agency
Openalex Percentile: Top 99%
Metamaterials and Metasurfaces Applications
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