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Ptychographic lens-less birefringence microscopy using a mask-modulated polarization image sensor

  • Jeongsoo Kim
  • , Seungri Song
  • , Hongseong Kim
  • , Bora Kim
  • , Mirae Park
  • , Seung Jae Oh
  • , Daesuk Kim
  • , Barry Cense
  • , Yong min Huh
  • , Joo Yong Lee
  • , Chulmin Joo*
  • *Corresponding author for this work
  • Yonsei University
  • University of Ulsan
  • University of Western Australia

Research output: Contribution to journalJournal articlepeer-review

Abstract

Birefringence, an inherent characteristic of optically anisotropic materials, is widely utilized in various imaging applications ranging from material characterizations to clinical diagnosis. Polarized light microscopy enables high-resolution, high-contrast imaging of optically anisotropic specimens, but it is associated with mechanical rotations of polarizer/analyzer and relatively complex optical designs. Here, we present a form of lens-less polarization-sensitive microscopy capable of complex and birefringence imaging of transparent objects without an optical lens and any moving parts. Our method exploits an optical mask-modulated polarization image sensor and single-input-state LED illumination design to obtain complex and birefringence images of the object via ptychographic phase retrieval. Using a camera with a pixel size of 3.45 μm, the method achieves birefringence imaging with a half-pitch resolution of 2.46 μm over a 59.74 mm2 field-of-view, which corresponds to a space-bandwidth product of 9.9 megapixels. We demonstrate the high-resolution, large-area, phase and birefringence imaging capability of our method by presenting the phase and birefringence images of various anisotropic objects, including a monosodium urate crystal, and excised mouse eye and heart tissues.

Original languageEnglish
Article number19263
JournalScientific Reports
Volume13
Issue number1
DOIs
StatePublished - 2023.12

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