Twin‐Lever Multifunctional Meta‐Optics With High Longitudinal Tolerance

Metasurfaces have transformed nanophotonics by enabling full vectorial control of light's amplitude, phase, and polarization within subwavelength-thick structures, allowing functionalities unattainable with traditional refractive optics. achieving broad achromaticity and multifunctional operation on one flat platform is still a major challenge for imaging applications using metasurfaces. Additionally, current designs face limitations due to small longitudinal tolerance and aperture size. These issues create strict optical alignment requirements that make practical, real-time use difficult. Here, we present a twin-lever design strategy that achieves polarization-programmable, achromatic broadband dual-mode imaging (bright-field focusing and vortex-mediated edge-enhanced imaging), with precise control over the axial position of maximum intensity through the aperture, all realized within an ultra-compact, single-layer metasurface architecture featuring high longitudinal tolerance. Comprehensive full-wave simulations and experimental characterizations confirm chromatic-aberration-free focusing, spin-selective phase fidelity, and high-longitudinal tolerance with aperture-weighted axial bias across the visible spectrum (488-633 nm). This CMOS-compatible easy to operate platform establishes a foundation for reconfigurable, multimodal, and broadband optical systems, heralding a new class of intelligent meta-optical components for next-generation microscopy, imaging, and integrated photonic technologies.

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Publication Details

Journal
Advanced Science
Published
2026-09-16
DOI
https://doi.org/10.1002/advs.77477
Primary Topic
Metamaterials and Metasurfaces Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Twin‐Lever Multifunctional Meta‐Optics With High Longitudinal Tolerance

Isma Javed, Junsuk Rho, Aqib Raza Shah, Jichuan Xiong et al.
Advanced Science
Metamaterials and Metasurfaces Applications
article

Twin‐Lever Multifunctional Meta‐Optics With High Longitudinal Tolerance

Isma Javed, Junsuk Rho, Aqib Raza Shah, Jichuan Xiong, Azhar Javed Satti, Joohoon Kim, Muhammad Qasim Mehmood, Xuefeng Liu, Muhammad Zubair, Kyungtae Kim, Dohyun Kang
article en

Abstract

Metasurfaces have transformed nanophotonics by enabling full vectorial control of light's amplitude, phase, and polarization within subwavelength-thick structures, allowing functionalities unattainable with traditional refractive optics. achieving broad achromaticity and multifunctional operation on one flat platform is still a major challenge for imaging applications using metasurfaces. Additionally, current designs face limitations due to small longitudinal tolerance and aperture size. These issues create strict optical alignment requirements that make practical, real-time use difficult. Here, we present a twin-lever design strategy that achieves polarization-programmable, achromatic broadband dual-mode imaging (bright-field focusing and vortex-mediated edge-enhanced imaging), with precise control over the axial position of maximum intensity through the aperture, all realized within an ultra-compact, single-layer metasurface architecture featuring high longitudinal tolerance. Comprehensive full-wave simulations and experimental characterizations confirm chromatic-aberration-free focusing, spin-selective phase fidelity, and high-longitudinal tolerance with aperture-weighted axial bias across the visible spectrum (488-633 nm). This CMOS-compatible easy to operate platform establishes a foundation for reconfigurable, multimodal, and broadband optical systems, heralding a new class of intelligent meta-optical components for next-generation microscopy, imaging, and integrated photonic technologies.

Advanced Science
Pohang University of Science and Technology (KR), Information Technology University (PK), University of Leicester (GB), University of the Punjab (PK), Nanjing University of Science and Technology (CN), Nanomaterials Research (United States) (US)
National Research Foundation, Pohang University of Science and Technology, Korea Health Industry Development Institute, Ministry of Education, India, Higher Education Commision, Pakistan, Ministry of Science and ICT, South Korea, Advanced Research Projects Agency
Openalex Percentile: Top 28%
Metamaterials and Metasurfaces Applications
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