English

Full-field Brillouin microscopy based on an imaging Fourier transform spectrometer

Optics 2024-09-04 v1

Abstract

Brillouin microscopy is an emerging optical elastography technique that can be used to assess mechanical properties of biological samples in a 3D, all-optical and hence non-contact fashion. However, the low cross-section of spontaneous Brillouin scattering results in weak signals typically requiring prolonged exposure times or illumination dosages potentially harmful for biological samples. Here, we present a new approach for highly-multiplexed, and therefore rapid, spectral acquisition of the Brillouin scattered light. Specifically, by exploiting a custom-built Fourier-transform imaging spectrometer and the symmetric properties of the Brillouin spectrum, we experimentally demonstrate full-field 2D spectral Brillouin imaging of phantoms as well as biological samples, at a throughput of up to 40,000 spectra per second over a ~300um field-of-view. This represents an approximately three orders of magnitude improvement in speed and throughput compared to standard confocal methods while retaining high spatial resolution and the capability to acquire three-dimensional images of photosensitive samples in biology and medicine.

Keywords

Cite

@article{arxiv.2409.02092,
  title  = {Full-field Brillouin microscopy based on an imaging Fourier transform spectrometer},
  author = {Carlo Bevilacqua and Robert Prevedel},
  journal= {arXiv preprint arXiv:2409.02092},
  year   = {2024}
}

Comments

20 pages, 4 main figures, 3 supplementary figures

R2 v1 2026-06-28T18:32:57.977Z