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Xinjian Lu, Yinghui Guo, Mingbo Pu

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    This study introduces an achromatic, polarization-multiplexed super-oscillatory metasurface for versatile super-resolution imaging. This device overcomes limitations of traditional lenses, enabling flexible light field modulation across multiple colors.

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    Area of Science:

    • Optics and Photonics
    • Metamaterials
    • Super-resolution Imaging

    Background:

    • Super-oscillation enables far-field super-resolution imaging but is often limited by chromatic aberration and single functionality.
    • Existing super-oscillatory lenses lack flexibility for practical applications due to color aberrations and limited operational modes.

    Purpose of the Study:

    • To propose and demonstrate an achromatic polarization-multiplexed super-oscillatory metasurface.
    • To achieve flexible light field modulation across multiple wavelengths (blue, green, red).
    • To overcome chromatic aberration and single-functionality limitations in super-oscillatory devices.

    Main Methods:

    • Design and fabrication of a polarization-multiplexed super-oscillatory metasurface.
    • Utilizing polarization control (x- and y-polarized light) for distinct focusing behaviors.
    • Experimental validation of achromatic diffraction-limited and sub-diffraction focusing at 473 nm, 532 nm, and 632.8 nm.

    Main Results:

    • The metasurface achieves achromatic diffraction-limited focusing with x-polarized light.
    • The metasurface achieves achromatic sub-diffraction (super-resolution) focusing with y-polarized light.
    • Multi-wavelength super-oscillatory achromatic focusing with varying super-resolution capabilities was demonstrated.

    Conclusions:

    • The proposed achromatic polarization-multiplexed super-oscillatory metasurface offers enhanced flexibility and overcomes key limitations of previous designs.
    • This technology can simplify super-resolution optical imaging systems.
    • Potential applications include color imaging, advanced microscopy, and machine vision.