• DocumentCode
    1257832
  • Title

    Kinetic two-dimensional modeling of inductively coupled plasmas based on a hybrid kinetic approach

  • Author

    Kortshagen, Uwe ; Heil, Brian G.

  • Author_Institution
    Dept. of Mech. Eng., Minnesota Univ., Minneapolis, MN, USA
  • Volume
    27
  • Issue
    5
  • fYear
    1999
  • fDate
    10/1/1999 12:00:00 AM
  • Firstpage
    1297
  • Lastpage
    1309
  • Abstract
    In this paper, we present a two-dimensional (2-D) kinetic model for low-pressure inductively coupled discharges. The kinetic treatment of the plasma electrons is based on a hybrid kinetic scheme in which the range of electron energies is divided into two subdomains. In the low energy range the electron distribution function is determined from the traditional nonlocal approximation. In the high energy part the complete spatially dependent Boltzmann equation is solved. The scheme provides computational efficiency and enables inclusion of electron-electron collisions which are important in low-pressure high-density plasmas. The self-consistent scheme is complemented by a 2-D fluid model for the ions and the solution of the complex wave equation for the RF electric field. Results of this model are compared to experimental results. Good agreement in terms of plasma density and potential profiles is observed. In particular, the model is capable of reproducing the transition from on-axis to off-axis peaked density profiles as observed in experiments which underlines the significant improvements compared to models purely based on the traditional nonlocal approximation
  • Keywords
    Boltzmann equation; plasma density; plasma kinetic theory; plasma transport processes; 2D fluid model; RF electric field; complex wave equation; computational efficiency; density profiles; electron distribution function; electron-electron collisions; hybrid kinetic approach; hybrid kinetic scheme; inductively coupled plasmas; kinetic two-dimensional modeling; low-pressure high-density plasmas; low-pressure inductively coupled discharges; nonlocal approximation; plasma density; plasma electrons kinetic treatment; potential profiles; self-consistent scheme; spatially dependent Boltzmann equation; Boltzmann equation; Computational efficiency; Distribution functions; Electrons; Kinetic theory; Partial differential equations; Plasma density; Plasma waves; Radio frequency; Two dimensional displays;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/27.799806
  • Filename
    799806