• DocumentCode
    1079886
  • Title

    The relative roles of avalanche multiplication and multiphoton absorption in laser-induced damage of dielectrics

  • Author

    Vaidyanathan, A. ; Walker, T.W. ; Guenther, A.H.

  • Author_Institution
    Air Force Weapons Laboratory, Kirtland Air Force Base, NM, USA
  • Volume
    16
  • Issue
    1
  • fYear
    1980
  • fDate
    1/1/1980 12:00:00 AM
  • Firstpage
    89
  • Lastpage
    93
  • Abstract
    The optical electric field strengths associated with pulsed laser exposures needed to produce conduction electron densities of 1018/cm3in several direct-gap alkali halides are calculated using three different models: a simplified avalanche model, the Keldysh formulation of multiphoton ionization, and a combination of the two. Numerical calculations are performed for crystalline NaCl, KCl, KBr, NaF, LiF, and CaF2at wavelengths of 1.064, 0.694, 0.532, and 0.355 μm, for nanosecond and picosecond pulse durations. The results are compared with available experimental data resulting in the following observations: the damage field strengths predicted by the avalanche model scatter around the experimentally measured values, but they always agree within a factor of approximately four. The electric field strengths required for breakdown solely from the simultaneous absorption of four or more photons are significantly larger than the experimental values or the predictions of the avalanche model. However, in NaCl, KCl, and KBr the electric fields necessary for damage due to four-photon absorption are slightly smaller than those needed for catastrophic avalanche multiplication, and are in significantly closer agreement with the experimentally measured damage thresholds. When the avalanche and multiphoton models are combined in a direct manner the resulting thresholds are close to the smaller of the two previously calculated thresholds, and are in reasonable agreement with the experimental data with respect to their dependence on laser frequency and pulse duration.
  • Keywords
    Avalanche breakdown; Calcium materials/devices; Dielectric radiation effects; Infrared propagation, absorbing media; Laser radiation effects; Lithium materials/devices; Optical propagation in absorbing media; Potassium materials/devices; Sodium materials/devices; Absorption; Crystallization; Dielectrics; Electron optics; Ionization; Kirchhoff´s Law; Laser modes; Optical pulses; Optical scattering; Predictive models;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.1980.1070331
  • Filename
    1070331