• DocumentCode
    1251138
  • Title

    Thermal analysis of blood undergoing laser photocoagulation

  • Author

    Barton, Jennifer Kehlet ; Popok, Dan P. ; Black, John F.

  • Author_Institution
    Arizona Univ., Tucson, AZ, USA
  • Volume
    7
  • Issue
    6
  • fYear
    2001
  • Firstpage
    936
  • Lastpage
    943
  • Abstract
    The temperature of blood undergoing laser-induced photocoagulation during long-pulse (10 ms) 532 nm irradiation was measured in a time- and spatially-resolved manner using a novel technique. This method is based on the change in reflectivity of a solid-liquid interface given a dynamically changing refractive index in the liquid phase. In our case, the temperature-dependent change in the refractive index of blood was utilized, and the reflectivity at a glass-blood interface was measured. Measurements were compared to predictions from a finite-element model incorporating the effects of time-dependent changes in the absorption coefficients of the blood, and phase changes representing coagulation and the liquid/vapor transition. Previous studies have linked the onset of blood coagulation to a sharp rise in the 532-nm reflectance of the blood. Based on the thermal measurements and the results of an Arrhenius analysis, we postulate that the reflectance rise is a combination of protein denaturation and red blood cell conformal changes
  • Keywords
    absorption coefficients; bio-optics; biothermics; blood; cellular biophysics; finite element analysis; laser applications in medicine; radiation therapy; reflectometry; refractive index measurement; 10 ms; 532 nm; Arrhenius analysis; absorption coefficients; blood; blood temperature; coagulation; dynamically changing refractive index; finite-element model; glass-blood interface; laser photocoagulation; liquid/vapor transition; long-pulse irradiation; phase changes; protein denaturation; red blood cell conformal changes; reflectance; reflectivity; solid-liquid interface; spatially-resolved manner; thermal analysis; time-dependent changes; time-resolved manner; Absorption; Blood; Coagulation; Finite element methods; Phase measurement; Predictive models; Proteins; Reflectivity; Refractive index; Temperature;
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/2944.983297
  • Filename
    983297