Fluorescent heterogeneities in turbid media: limits for detection, characterization, and comparison with absorption
- 1 October 1998
- journal article
- Published by Optica Publishing Group in Applied Optics
- Vol. 37 (28), 6833-6844
- https://doi.org/10.1364/ao.37.006833
Abstract
The fundamental limits for detection and characterization of fluorescent (phosphorescent) inhomogeneities embedded in tissuelike highly scattering turbid media are investigated. The absorption and fluorescence contrast introduced by exogenous fluorophores are also compared. Both analyses are based on practical signal-to-noise ratio considerations. For an object with fivefold fluorophore concentration and lifetime contrast with respect to the background tissue, we find the smallest detectable fluorescent object at 3-cm depth in tissuelike turbid media to be ∼0.25 cm in radius, whereas the smallest characterizable object size is ∼0.75 cm in radius, given a model with 1% amplitude and 0.5° phase noise. We also find that, for fluorescence extinction coefficients ∊ ≤ 0.5 × 105 cm-1 M-1, the fluorescence measurement mode is superior to the absorption mode for detecting an inhomogeneity. The optimal choice of modulation frequency for the frequency-domain fluorescence measurements is also discussed.Keywords
This publication has 24 references indexed in Scilit:
- Localization and Efficacy Analysis of the Phototherapeutic Lutetium Texaphyrin (PCI‐0123) in the Murine EMT6 Sarcoma ModelPhotochemistry and Photobiology, 1997
- Detection and characterization of optical inhomogeneities with diffuse photon density waves: a signal-to-noise analysisApplied Optics, 1997
- Frequency-domain photon migration measurements of normal and malignant tissue optical properties in a human subjectApplied Optics, 1997
- Spectroscopy and Imaging with Diffusing LightPhysics Today, 1995
- Origin of phosphorescence signals reemitted from tissuesOptics Letters, 1994
- Mathematical model for time-resolved and frequency-domain fluorescence spectroscopy in biological tissuesApplied Optics, 1994
- Scattering and wavelength transduction of diffuse photon density wavesPhysical Review E, 1993
- Acousto-optic scanning and interfering photon density waves for precise localization of an absorbing (or fluorescent) body in a turbid mediumReview of Scientific Instruments, 1993
- Time resolved reflectance and transmittance for the noninvasive measurement of tissue optical propertiesApplied Optics, 1989