• DocumentCode
    1550707
  • Title

    Structure asymmetry effects in the optical gain of piezostrained InGaN quantum wells

  • Author

    Peng, L.-H. ; Hsu, Y.-C. ; Chuang, C.-W.

  • Author_Institution
    Dept. of Electr. Eng., Nat. Taiwan Univ., Taipei, Taiwan
  • Volume
    5
  • Issue
    3
  • fYear
    1999
  • Firstpage
    756
  • Lastpage
    764
  • Abstract
    We investigate the effects of structural asymmetry on the electronic and optical properties of indium gallium nitride (InGaN) quantum wells (QW´s). Using a pulsed current excitation technique, spectral blue shift as large as 80 meV is observed in a strained 3.0-nm In0.2Ga0.8N QW as the pulsed current increases from 1 mA to 1 A. Based on a self-consistent calculation, we are able to quantify a gain competition process among the interactions of piezoelectricity, many-body, charge screening, and band filling effects. Such interactions are shown to provide a mechanism for shaping the QW confined potential such that superior carrier confinement and charge screening of the piezoelectric field can be obtained in the asymmetric InGaN QW. At high carrier injection of Ninj>2×1019 cm-3, a tenfold increase in the TE-polarized optical gain can be achieved by using the asymmetric GaN-InGaN-AlGaN QW instead of the symmetric InGaN-AlGaN QW. Due to the diminishing of piezoelectricity-induced quantum-confined Stark effect, the calculated optical gain spectra of the asymmetric InGaN QW exhibit a spectral blue shift with respect to those of the symmetric InGaN QW
  • Keywords
    III-V semiconductors; MOCVD; gallium compounds; indium compounds; laser beams; optical fabrication; piezoelectricity; quantum confined Stark effect; quantum well lasers; 1 mA to 1 A; GaN-InGaN-AlGaN; In0.2Ga0.8N; InGaN; InGaN quantum wells; InGaN-AlGaN; TE-polarized optical gain; asymmetric quantum well; band filling effects; carrier confinement; carrier injection; charge screening effects; electronic properties; gain competition process; many-body effects; optical gain; optical gain spectra; optical properties; piezoelectric field; piezoelectricity; piezoelectricity-induced quantum-confined Stark effect; piezostrained quantum wells; pulsed current excitation technique; quantum well confined potential; self-consistent calculation; spectral blue shift; structure asymmetry effects; symmetric quantum well; Carrier confinement; Diode lasers; Gallium nitride; III-V semiconductor materials; Indium; Optical materials; Optical pulses; Photonic band gap; Piezoelectric effect; Stimulated emission;
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/2944.788448
  • Filename
    788448