• DocumentCode
    1251223
  • Title

    Free electron laser ablation of urinary calculi: an experimental study

  • Author

    Chan, Kin F o o n g ; Choi, Bernard ; Vargas, Gracie ; Hammer, Daniel X. ; Sorg, Brian ; Pfefer, T. J o s h u a ; Teichman, Joel M H ; Welch, Ashley J. ; Jansen, E. D u c o

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Texas Univ., Austin, TX, USA
  • Volume
    7
  • Issue
    6
  • fYear
    2001
  • Firstpage
    1022
  • Lastpage
    1033
  • Abstract
    Infrared laser ablation of urinary calculi was investigated as a function of wavelength to determine the relation of ablation threshold fluences, ablation depths, and optical absorption. A simple photothermal ablation model was employed to examine this relationship. Human urinary calculi composed of >95% uric acid, >95% cystine, >95% calcium oxalate monohydrate (COM), and >90% magnesium ammonium phosphate hexahydrate (MAPH) were used. Various wavelengths between 2.1 and 6.5 μm were selected to perform threshold fluence and ablation depth measurements. The laser source for this study was the tunable pulsed infrared free electron laser (FEL) at Vanderbilt University. Experimental results indicated a correlation of threshold fluence and ablation depth to the optical absorption properties of the calculi. When calculus optical absorption increased, the threshold fluences decreased. Although the ablation depths increased with calculus optical absorption, results indicated that in certain calculi the ablation depth was affected by optical attenuation through the ablation plume. These observations were in agreement with the photothermal ablation model, but fractures in striated calculi at higher optical absorptions indicated the contribution of a photomechanical mechanism
  • Keywords
    diseases; free electron lasers; kidney; laser applications in medicine; light absorption; photothermal effects; radiation therapy; 2.1 to 6.5 micron; ablation depth measurements; ablation plume; calcium oxalate monohydrate; cystine; free electron laser ablation; kidney stone; magnesium ammonium phosphate hexahydrate; optical absorption properties; photomechanical mechanism; simple photothermal ablation model; threshold fluence; threshold fluences; uric acid; urinary calculi; Calcium; Calculus; Electromagnetic wave absorption; Electron optics; Free electron lasers; Humans; Laser ablation; Laser modes; Magnesium; Optical attenuators;
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/2944.983308
  • Filename
    983308