• DocumentCode
    1560430
  • Title

    Spectral properties of proton irradiated gallium nitride blue diodes

  • Author

    Gaudreau, François ; Carlone, Cosmo ; Houdayer, Alain ; Khanna, Shyam M.

  • Author_Institution
    Dept. de Phys., Sherbrooke Univ., Que., Canada
  • Volume
    48
  • Issue
    6
  • fYear
    2001
  • fDate
    12/1/2001 12:00:00 AM
  • Firstpage
    1778
  • Lastpage
    1784
  • Abstract
    The permanent damage induced by 2 MeV proton irradiation at room temperature is reported for gallium nitride based blue emitting diodes (CREE model C430-DH85). Both optical and electrical device characteristics were measured. The I-V dependence was obtained as a function of temperature. At low voltages, the current is proportional to the exponential of the voltage at a constant temperature and the slope of the I-V curve is independent of temperature for the range 75-350 K, confirming the tunneling mechanism of the carrier injection. The room-temperature curve was studied as a function of 2-MeV proton irradiation in the fluence range 1011 to 1015 cm -2. It is hardly affected up to a fluence of 3×1012 cm-2. Higher fluences do not affect the tunneling mechanism, but proton irradiation affects the saturation value of the current. The integrated electroluminescence versus voltage curves were obtained as a function of fluence, but the results were not amenable to a degradation constant interpretation. To gain insight into the degradation mechanism, the electroluminescence was analyzed spectrally and found to be the sum of the band-to-band transition in blue color at ≈430 nm and a parasitic yellow band. The contribution of each transition was determined. The ratio of the contributions depends on driving current, temperature, and fluence. Treated individually, both the band-to-band and the yellow transition are related to fluence. The 2-MeV proton radiation damage constant is (7±1)×10-14 cm-2 for the band-to-band and (2.0±0.4)×10-14 cm-2 for the yellow transitions. The degradation of space charge recombination and diffusion of minority carriers cause the degradation of the electroluminescence. GaN light-emitting diodes (LEDs) are about two orders of magnitude more resistant to 2-MeV proton irradiation than GaAs LEDs
  • Keywords
    III-V semiconductors; electroluminescence; electron-hole recombination; gallium compounds; light emitting diodes; minority carriers; proton effects; space charge; tunnelling; wide band gap semiconductors; 2 MeV; 75 to 350 K; CREE C430-DH85; GaN; I-V curve; band-to-band transition; carrier injection; damage constant; degradation mechanism; electrical characteristics; electroluminescence; gallium nitride blue light-emitting diode; minority carrier diffusion; optical characteristics; proton irradiation; space charge recombination; spectral properties; tunneling mechanism; yellow transition; Degradation; Electroluminescence; Gallium nitride; III-V semiconductor materials; Light emitting diodes; Optical devices; Protons; Temperature dependence; Temperature distribution; Voltage;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/23.983130
  • Filename
    983130