• DocumentCode
    3585139
  • Title

    Inhomogeneous Broadening in Photocurrent Spectra of DWELL-IP due to Stoichiometric and Geometric Irregularity of QD Assembly

  • Author

    Joy, Soumitra Roy ; Mohammedy, Farseem Mannan

  • Author_Institution
    Dept. of Electr. & Electron. Eng., Bangladesh Univ. of Eng. & Technol., Dhaka, Bangladesh
  • fYear
    2014
  • Firstpage
    77
  • Lastpage
    82
  • Abstract
    We report a quantum mechanical analysis of photocurrent response and its inhomogeneous broadening in a GaAs/InGaAs/InAs Quantum-Dot-in-a-Well Infrared Photo detector studied and modeled by Green´s Function Formalism. Factors that typically contribute to spectral broadening, namely quantum dot geometric dimension variance, and irregular inter-diffusion of Gallium atom from quantum well to binary Incas quantum dot are primarily taken into account for calculating spectral shifting and consequent widening. Required data of size and alloying non-uniformity of QD is taken from STM of a quantum dot reported by Ouattara et. al. Besides, the effect of having a gradient and blurred boundary between individual compounds of DWELL instead of a sharply defined territory as evident from STM image is discussed in terms of peak wavelength shifting and modulation of dark current. We observed a minimal of 10 times widening of spectral maxima in an inhomogeneous assembly of quantum dot compared to that generated by an all-round homogeneous assembly of QD. Our calculation also identifies the size irregularity of QD to be twice as much responsible as stoichiometric irregularity of QD in contributing to the broadening of the spectrum.
  • Keywords
    Green´s function methods; III-V semiconductors; assembling; dark conductivity; gallium arsenide; indium compounds; infrared detectors; photoconductivity; photodetectors; quantum well devices; semiconductor quantum dots; spectral line broadening; spectral line shift; stoichiometry; DWELL-IP; GaAs-InGaAs-InAs; Green´s function formalism; QD assembly; STM; blurred boundary; dark current modulation; geometric irregularity; homogeneous assembly; inhomogeneous photocurrent spectra broadening; irregular interdiffusion; peak wavelength shifting; photocurrent response; quantum dot geometric dimension variance; quantum dot in a well infrared photodetector; quantum mechanical analysis; quantum well; spectral shift calculation; stoichiometric irregularity; Alloying; Assembly; Gallium arsenide; Nonhomogeneous media; Photoconductivity; Quantum dots; Scattering; Green´s function formalism; Quantum Dot in a Well detector; Quantum dot non-uniformity; inhomogeneous broadening; photo-current spectra;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Modelling Symposium (AMS), 2014 8th Asia
  • Print_ISBN
    978-1-4799-6486-4
  • Type

    conf

  • DOI
    10.1109/AMS.2014.26
  • Filename
    7079279