English

Multi-Spectral Reflection Matrix for Ultra-Fast 3D Label-Free Microscopy

Optics 2024-10-25 v3 Image and Video Processing

Abstract

Label-free microscopy exploits light scattering to obtain a three-dimensional image of biological tissues. However, light propagation is affected by aberrations and multiple scattering, which drastically degrade the image quality and limit the penetration depth. Multi-conjugate adaptive optics and time-gated matrix approaches have been developed to compensate for aberrations but the associated frame rate is extremely limited for 3D imaging. Here we develop a multi-spectral matrix approach to solve these fundamental problems. Based on a sparse illumination scheme and an interferometric measurement of the reflected wave-field at multiple wavelengths, the focusing process can be optimized in post-processing for any voxel by addressing independently each frequency component of the reflection matrix. A proof-of-concept experiment demonstrates the three-dimensional image of an opaque human cornea over a 0.1 mm3^3-field-of-view at a 290 nm-resolution and a 1 Hz-frame rate. This work paves the way towards a fully-digital microscope allowing real-time, in-vivo, quantitative and deep inspection of tissues.

Keywords

Cite

@article{arxiv.2309.10951,
  title  = {Multi-Spectral Reflection Matrix for Ultra-Fast 3D Label-Free Microscopy},
  author = {Paul Balondrade and Victor Barolle and Nicolas Guigui and Emeric Auriant and Nathan Rougier and Claude Boccara and Mathias Fink and Alexandre Aubry},
  journal= {arXiv preprint arXiv:2309.10951},
  year   = {2024}
}

Comments

55 pages, 9 figures

R2 v1 2026-06-28T12:26:41.113Z