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Miniaturized Single-Photon Level Computational Complex Field Imaging System via Meta-Optics

  • Yuhao Wang
  • , Qihao Jin*
  • , Chongwu Shao
  • , Qiaoshuang Zhang
  • , Judith K. Hohmann
  • , Alban Muslija
  • , Shijian Li
  • , Zhigang Li
  • , Uli Lemmer*
  • , Xuri Yao*
  • , Qing Zhao*
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • Kunming Institute of Physics
  • Karlsruhe Institute of Technology
  • CAS - Institute of Microelectronics

Research output: Contribution to journalArticlepeer-review

Abstract

Compact optical systems are revolutionizing precision measurement with their miniaturized design and functionality. At the forefront of this revolution are metalenses, composed of sub-wavelength nanostructures. They have emerged as novel planar optical elements capable of replacing traditional bulky lenses in various compact optical applications. Meanwhile, single-pixel imaging provides a cost-effective, computation-based method for achieving exceptional imaging quality. In this work, a metalens is integrated with a single-pixel imaging architecture to project high-resolution Hadamard patterns onto microscopic samples, replacing conventional lens-to-detector configurations. The system can simultaneously retrieve high-quality amplitude and phase maps of micro targets, even under single-photon-level illumination conditions (1.7 photons/pixel/s). This breakthrough is ideal for biological samples, particularly in live cell imaging, where minimizing light exposure is critical to avoid photobleaching and phototoxicity. By delivering a cost-effective, compact, and high-performance solution, this system sets a new era for precision imaging in science and industry.

Original languageEnglish
Article numbere01310
JournalAdvanced Optical Materials
Volume13
Issue number32
DOIs
Publication statusPublished - 14 Nov 2025
Externally publishedYes

Keywords

  • metalens
  • single-photon
  • single-pixel imaging

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