• DocumentCode
    1223118
  • Title

    Theoretical Analysis of Diffuse Reflectance from a Two-Layer Tissue Model

  • Author

    Takatani, Setsuo ; Graham, Marshall D.

  • Author_Institution
    Department of Artificial Organs, Cleveland Clinic Foundation
  • Issue
    12
  • fYear
    1979
  • Firstpage
    656
  • Lastpage
    664
  • Abstract
    A three-dimensional diffuse reflectance equation for a two-layer tissue model was developed using photon diffusion theory. In this model, tissue was considered to consist of two homogeneous isotropically scattering layers whose scattering and absorption constants were expressed as a linear sum of those of whole blood and a blood-free tissue component; tissue hemoglobin content and oxygen saturation were then expressed in terms of these total tissue parameters. Reflectance predictions given by the two-layer equation were used to investigate the effects of various tissue and system parameters on the partial reflectance from the second tissue layer; among such parameters significantly affecting deep-layer reflectance are the tissues scattering constants, its geometry, and the geometry of the optical transducer. When the penetration depth of the incident photons is small compared with the thickness of the first layer, reflectance contributions from the second layer are negligible, and a single-layer approximation would be adequate; resultant reflectance errors range from 6 to 8 percent of the total reflectance, for source-detector separations in the range from 1 to 4 mm. However, when the photon penetration depth is large with respect to first-layer thickness, the effects of deep layers are both important and strongly dependent on transducer geometry; partial reflectances range to 50 percent of the total when the source-detector separation is 4 mm.
  • Keywords
    Absorption; Blood; Equations; Geometrical optics; Optical saturation; Optical scattering; Particle scattering; Reflectivity; Scattering parameters; Transducers; Absorption; Animals; Diffusion; Dogs; Hemoglobins; Light; Models, Biological; Optics; Oximetry; Scattering, Radiation; Transducers;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.1979.326455
  • Filename
    4122972