Monte Carlo modelling of fluorescence in semi-infinite turbid media

Proc SPIE Int Soc Opt Eng. 2018 Jan-Feb:10492:104920T. doi: 10.1117/12.2290137. Epub 2018 Feb 26.

Abstract

The incident field size and the interplay of absorption and scattering can influence the in-vivo light fluence rate distribution and complicate the absolute quantification of fluorophore concentration in-vivo. In this study, we use Monte Carlo simulations to evaluate the effect of incident beam radius and optical properties to the fluorescence signal collected by isotropic detector placed on the tissue surface. The optical properties at the excitation and emission wavelengths are assumed to be identical. We compute correction factors to correct the fluorescence intensity for variations due to incident field size and optical properties. The correction factors are fitted to a 4-parameters empirical correction function and the changes in each parameter are compared for various beam radius over a range of physiologically relevant tissue optical properties (μa = 0.1 - 1 cm-1, μs'= 5 - 40 cm-1).

Keywords: Fluorescence; MC simulation; incident field size; photodynamic therapy; tissue optical properties.