DocumentCode :
1018349
Title :
PIC/MC modeling of dusty radio-frequency discharges
Author :
Goedheer, Willem Jan ; Chutov, Yuriy I.
Author_Institution :
FOM Inst. for Plasma Phys., Nieuwegein, Netherlands
Volume :
32
Issue :
2
fYear :
2004
fDate :
4/1/2004 12:00:00 AM
Firstpage :
551
Lastpage :
554
Abstract :
We have extended a one-dimensional particle-in-cell plus Monte Carlo model for argon radio-frequency discharges with scattering and capture of electrons and ions on dust particles immersed in the discharge. The orbital motion limited cross section is used for the capture process. For scattering, we took the bare Coulomb interaction for impact parameters below the linearized Debye length and neglected the interaction for larger values, thus accounting for the shielding. With this model, we have studied discharges with dust confined in two layers, leaving a dust-free void in the center and dust-free sheaths in front of the electrodes. This situation resembles the distribution along the axis of discharges studied in microgravity plasma crystal experiments. Results show the generation of (multiple) space charge layers near the edges of the dust clouds and the interdependence of the dust charge and the electron energy distribution function (EEDF), in particular the EEDF in the central void. Also, higher harmonics in the current waveform, frequently used to diagnose dusty plasmas, are observed.
Keywords :
Monte Carlo methods; argon; dusty plasmas; high-frequency discharges; plasma collision processes; plasma density; plasma diagnostics; plasma sheaths; plasma simulation; plasma temperature; space charge; Ar; argon; bare Coulomb interaction; center sheaths; central void; confined dust; current waveform; discharge axis; dust charge interdependence; dust clouds; dust-free sheaths; dust-free void; dusty radiofrequency discharges; electrodes; electron capture; electron energy distribution function; electron scattering; higher harmonics; immersed dust particles; impact parameters; ion capture; ion scattering; linearized Debye length; microgravity plasma crystal experiments; one-dimensional particle-in-cell plus Monte Carlo model; orbital motion limited cross section; shielding; space charge layers generation; Argon; Electrodes; Electrons; Monte Carlo methods; Particle scattering; Plasma confinement; Plasma sheaths; Plasma waves; Radio frequency; Scattering parameters; Dusty plasma; Monte Carlo; numerical modeling; particle-in-cell;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2004.826104
Filename :
1308513
Link To Document :
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