Spatially resolved refractometry, fluorophore-concentration, axial-position, and orientational imaging using an evanescent Bessel beam

Kaitlin Szederkenyi, Carine Julien, Bruno Lagarde, Ilya Olevsko, Adi Salomon, Martin Oheim

Research output: Contribution to journalConference articlepeer-review

Abstract

Simultaneous field- and aperture-plane (back-focal plane, BFP) imaging enriches the information content of fluorescence microscopy. In addition to the usual density and concentration maps of sample-plane images, BFP images provide information on the surface proximity and orientation of molecular fluorophores. They also give access to the refractive index of the fluorophore-embedding medium. However, in the high-NA, wide-field detection geometry commonly used in single-molecule localisation microscopies, such measurements are averaged over all fluorophores present in the objective's field of view, thus limiting spatial resolution and specificity. We here solve this problem and demonstrate how an oblique, variable-angle, coherent ring illumination can be used to generate a Bessel beam that - for supercritical excitation angles - produces an evanescent needle of light. Scanning the sample through the this evanescent needle enables us to acquire combined sample-plane and BFP images with sub-diffraction resolution and axial localisation precision. Background, resolution and polarisation considerations will be discussed.

Original languageEnglish
Article number04023
JournalEPJ Web of Conferences
Volume309
DOIs
StatePublished - 31 Oct 2024
Event2024 EOS Annual Meeting, EOSAM 2024 - Naples, Italy
Duration: 9 Sep 202413 Sep 2024

Bibliographical note

Publisher Copyright:
© The Authors, published by EDP Sciences.

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