• DocumentCode
    922918
  • Title

    Electron and Ion Kinetics in a DC Microplasma at Atmospheric Pressure

  • Author

    Choi, Jun ; Iza, Felipe ; Lee, Jae Koo ; Ryu, Chang-Mo

  • Author_Institution
    Pohang Univ. of Sci. & Technol., Pohang
  • Volume
    35
  • Issue
    5
  • fYear
    2007
  • Firstpage
    1274
  • Lastpage
    1278
  • Abstract
    The results of a particle-in-cell Monte Carlo collision (PIC-MCC) simulation of a direct current (DC) helium microplasma that operates at atmospheric pressure are presented. Electron and ion kinetic information that is not available from previous fluid studies is reported. Despite the high collisionality at atmospheric pressure, electrons are found to be in nonequilibrium. Similar to large-scale low-pressure dc discharges, the electron energy probability function (EEPF) in the bulk plasma presents three temperatures near the cathode, and it evolves into a bi-Maxwellian distribution as electrons approach the anode. The bi-Maxwellian character of the EEPF in the elastic energy region is not accounted for in fluid models, and as a result, PIC-MCC simulations predict a lower electron temperature than fluid models. The mean energy of ions that are impinging on the cathode is found to be significantly lower than in low-pressure discharges due to the large collisionality of the sheaths.
  • Keywords
    Monte Carlo methods; discharges (electric); helium; plasma collision processes; plasma kinetic theory; plasma sheaths; plasma simulation; plasma temperature; He; atmospheric pressure; bi-Maxwellian distribution; direct current helium microplasma; elastic energy region; electron energy probability function; electron kinetics; electron temperature; ion kinetics; ions mean energy; low-pressure discharges; particle-in-cell Monte Carlo collision simulation; sheath collisionality; Atmospheric modeling; Atmospheric-pressure plasmas; Cathodes; Electrons; Helium; Kinetic theory; Large-scale systems; Monte Carlo methods; Plasma temperature; Predictive models; Atmospheric-pressure glow discharge (APGD); kinetic simulation; microdischarge; microplasma;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2007.904827
  • Filename
    4343145