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Inverse-Designed 3D Laser Nanoprinted Phase Masks to Extend the Depth of Field of Imaging Systems

  • Thomas Jebb Sturges*
  • , Markus Nyman
  • , Sebastian Kalt
  • , Kauri Pälsi
  • , Panu Hilden
  • , Martin Wegener
  • , Carsten Rockstuhl
  • , Andriy Shevchenko*
  • *Corresponding author for this work
  • Karlsruhe Institute of Technology

Research output: Contribution to journalArticleScientificpeer-review

5 Citations (Web of Science)

Abstract

In optical imaging, achieving high resolution often comes at the expense of a shallow depth of field. This means that when using a standard microscope, any minor movement of the object along the optical axis can cause the image to become blurry. To address this issue, we exploit inverse design techniques to optimize a phase mask which, when inserted into a standard microscope, extends the depth of field by a factor of approximately four without compromising the microscope’s resolution. Differentiable Fourier optics simulations allow us to rapidly iterate toward an optimized design in a hybrid fashion, starting with gradient-free Bayesian optimization and proceeding to a local gradient-based optimization. To fabricate the device, a commercial two-photon 3D laser nanoprinter is used, in combination with a two-step precompensation routine, providing high fabrication speed and much better than subwavelength accuracy. We find excellent agreement between our numerical predictions and the measurements upon integrating the phase mask into a microscope and optically characterizing selected samples. The phase mask enables us to conduct simultaneous multiplane imaging of objects separated by distances that cannot be achieved with the original microscope.

Original languageEnglish
Pages (from-to)3765-3773
Number of pages9
JournalACS Photonics
Volume11
Issue number9
Early online date3 Sept 2024
DOIs
Publication statusPublished - 18 Sept 2024
MoE publication typeA1 Journal article-refereed

Keywords

  • 3D laser nanoprinting
  • depth of field
  • inverse design
  • optical imaging
  • phase mask

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