• DocumentCode
    1724556
  • Title

    Pre-breakdown and breakdown luminosity of large band gap insulators under pulsed electrical excitation

  • Author

    Asokan, T. ; Sudarshan, T.S.

  • Author_Institution
    Dept. of Electr. & Comput. Eng., South Carolina Univ., Columbia, SC, USA
  • fYear
    1992
  • Firstpage
    441
  • Lastpage
    447
  • Abstract
    Investigations of the luminous events associated with the breakdown along the surface of large-band-gap insulators such as alumina (polycrystalline) and silica (monocrystalline) were made by employing a phototube and a very sensitive photomultiplier tube (PMT). The special nature of the light emitted during breakdown is resolved (in terms of the wavelength) by interfacing a monochromator with the PMT. The onset of the luminous signal was found to occur much before the onset of voltage collapse during breakdown. In addition, the samples were found to emit light when no breakdown occurs. The early onset and light emission with no breakdown are found to be in the ultraviolet range. The results are discussed in terms of the solid-state defects (e.g., traps) possessing different energy levels
  • Keywords
    defect electron energy states; electric breakdown of solids; electroluminescence; electron traps; luminescence of inorganic solids; photomultipliers; Al2O3; SiO2; breakdown luminosity; large band gap insulators; light emission; monochromator; photomultiplier tube; phototube; pre-breakdown luminosity; pulsed electrical excitation; solid-state defects; traps; ultraviolet range; Breakdown voltage; Electric breakdown; Energy states; Insulation; Photoelectricity; Photomultipliers; Photonic band gap; Signal resolution; Silicon compounds; Solid state circuits;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electrical Insulation and Dielectric Phenomena, 1992. Annual Report. Conference on
  • Conference_Location
    Victoria, BC
  • Print_ISBN
    0-7803-0565-5
  • Type

    conf

  • DOI
    10.1109/CEIDP.1992.283212
  • Filename
    283212