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February 25, 2026Light Science & Applications4 citationsOpen Access

Double-phase metasurface operators for all-optical image processing

LYLinzhi YuHSHaobijam Johnson SinghJPJesse Pietila

Key Points

  • This research aims to develop a compact metasurface platform for efficient all-optical image processing.
  • Demonstrated the use of double-phase encoding and polarization multiplexing in metasurfaces
  • Performed experimental validations of key computations like differentiation and vertex detection
  • Extended the framework to achieve high-resolution complex holography
  • Achieved arbitrary image transformations within a single passive nanophotonic device
  • Showcased first-order differentiation, cross-correlation, and Laplacian differentiation
  • Attained subwavelength-scale control of wavefronts for high-fidelity depth-resolved reconstructions

Abstract

Abstract All-optical image processing offers a high-speed, energy-efficient alternative to conventional electronic systems by leveraging the wave nature of light for parallel computation. However, traditional optical processors rely on bulky components, limiting scalability and integration. Here, we demonstrate a compact metasurface-based platform for analog optical computing. By employing double-phase encoding and polarization multiplexing, our approach enables arbitrary image transformations within a single passive nanophotonic device, eliminating the need for complex optical setups or digital post-processing. We experimentally showcase key computational operations, including first-order differentiation, cross-correlation, vertex detection, and Laplacian differentiation. Additionally, we extend this framework to high-resolution complex holography, achieving subwavelength-scale volumetric wavefront control for depth-resolved reconstructions with high fidelity. Our results establish a scalable and versatile approach to computational optics, with applications including real-time image processing, energy-efficient computing, biomedical imaging, high-fidelity holographic displays, and optical data storage, driving the advancement of intelligent optical processors.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/699e90eff5123be5ed04e368https://doi.org/10.1038/s41377-025-02153-w
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