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Adaptive optics for fluorescence correlation spectroscopy. | LitMetric

AI Article Synopsis

  • Fluorescence Correlation Spectroscopy (FCS) measures parameters like molecule concentration and diffusion time in a specific observation volume, but requires calibration for accurate results.
  • The study investigates how optical aberrations affect FCS measurements, particularly when focusing laser beams at different depths in solutions.
  • An Adaptive Optics system with a Deformable Mirror is introduced to correct these aberrations, stabilizing FCS parameters and revealing that molecular brightness is proportional to the squared Strehl ratio.

Article Abstract

Fluorescence Correlation Spectroscopy (FCS) yields measurement parameters (number of molecules, diffusion time) that characterize the concentration and kinetics of fluorescent molecules within a supposedly known observation volume. Absolute derivation of concentrations and diffusion constants therefore requires preliminary calibrations of the confocal Point Spread Function with phantom solutions under perfectly controlled environmental conditions. In this paper, we quantify the influence of optical aberrations on single photon FCS and demonstrate a simple Adaptive Optics system for aberration correction. Optical aberrations are gradually introduced by focussing the excitation laser beam at increasing depths in fluorescent solutions with various refractive indices, which leads to drastic depth-dependent bias in the estimated FCS parameters. Aberration correction with a Deformable Mirror stabilizes these parameters within a range of several tens of μm into the solution. We also demonstrate, both theoretically and experimentally, that the molecular brightness scales as the Strehl ratio squared.

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Source
http://dx.doi.org/10.1364/OE.19.026839DOI Listing

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