• DocumentCode
    1102031
  • Title

    The role of semiconductor device diameter and energy-band bending in convergence of Picard iteration for Gummel´s map

  • Author

    Jerome, Joseph W.

  • Author_Institution
    Northwestern University, Evanston, IL
  • Volume
    32
  • Issue
    10
  • fYear
    1985
  • fDate
    10/1/1985 12:00:00 AM
  • Firstpage
    2045
  • Lastpage
    2051
  • Abstract
    Steady-state semiconductor-device simulation is studied. A mathematical analysis of the so-called Lipschitz constant of the Gummel map, in the Slotboom variables, is given in terms of the device diameter d and the band-bending. This constant is directly related to the convergence of Picard iteration, within a convex, compact solution set, determined by the steady state, Van Roosbroeck system maximum principles. Allowing for specified gradient singularities, of order cr^{-1/2} we obtain an asymptotic dependence of d^{5/2} as d \\rightarrow 0 . Functions of sup-inf boundary values of the data also appear, particularly as related to doping concentrations, in the representation of the band-bending. For simplicity, constant mobilities and zero recombination are assumed, at thermodynamic equilibrium. The setting is general, but motivated by FET devices. For micron devices at room temperature, convergence and unique solutions are expected up to, perhaps, band-bending of 0.42 - ⅔ log c(kT) electronvolts in width across the intrinsic energy level. The definition of the Gummel map used herein employs the potential equation as a fractional step, based upon given values of the Slotboom variables. The continuity equations are then solved for the values associated with the Gummel map. The condition given for convergence of Picard iteration also guarantees uniqueness of solutions of the device model for prescribed doping and contact conditions. Finally, the constant c is estimated on the basis of heuristic considerations.
  • Keywords
    Convergence; Doping; Equations; FETs; Mathematical analysis; Radiative recombination; Semiconductor devices; Spontaneous emission; Steady-state; Thermodynamics;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/T-ED.1985.22237
  • Filename
    1484983