• DocumentCode
    1139927
  • Title

    Index of refraction changes in semiconductors with population inversion

  • Author

    Butler, Jerome K.

  • Author_Institution
    Southern Methodist University, Dallas, TX, USA
  • Volume
    6
  • Issue
    6
  • fYear
    1970
  • fDate
    6/1/1970 12:00:00 AM
  • Firstpage
    316
  • Lastpage
    316
  • Abstract
    The effect of population inversion on the index of refraction in semiconductors is calculated. A simple model of the absorption edge is modified to include the effects of population inversion. By correlating the density of states in the conduction band with the absoption edge, a modification of the absorption edge occurs because of the filling of states in the conduction band. The effective density of hole states in the valence band is neglected because the density of states in the valence band is much larger than the density of states in the conduction band. When the exponential tail in the conduction band is filled to an energy Ef, a propagating electromagnetic wave does not attenuate for energies below Efdefined as the quasi-Fermi level for electrons in the inverted region. No attenuation occurs because electrons in the valence band can not be excited to the filled states of the conduction band. For a wave with an energy above Ef, band-to-band transistions are allowed because of vacant states in the conduction band. Therefore, for waves with energies E = \\hom ega > E_{f} , the absorption process is the same as the absorption process for a material without population inversion. Free carrier effects are neglected. The change in the index of refraction is calculated for various slopes of the band tails and for various values of Fermi levels below the nominal-band edge. The results show that at low temperatures there is a positive contribution to the index for energies slightly below the Fermi level. At energies much less than the Fermi level, the contribution to the index of refraction is negative. At absolute zero, the crossover between a negative contribution and a positive contribution to the index is E_{t} = E_{f} - 0.3725E_{0} where E0is the slope of the conduction-band tail. As the temperature increases, the value of Etincreases. The magnitude of the index of refraction change increase- - s as the slope E0increases.
  • Keywords
    Absorption; Electrons; Gallium arsenide; Laser excitation; Laser theory; Laser transitions; Pump lasers; Semiconductor diodes; Semiconductor lasers;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.1970.1076475
  • Filename
    1076475