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Terminal properties of a spherical RF electrode in an isotropic Vlasov plasma: Results of a computer simulation
Author(s) -
Calder A. C.,
Laframboise J. G.
Publication year - 1985
Publication title -
radio science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.371
H-Index - 84
eISSN - 1944-799X
pISSN - 0048-6604
DOI - 10.1029/rs020i004p00989
Subject(s) - physics , plasma , computational physics , atomic physics , debye sheath , isotropy , plasma oscillation , debye length , electric field , amplitude , vlasov equation , optics , quantum mechanics
We present results generated using a computer code which has been developed to model an isotropic inhomogeneous Vlasov plasma surrounding a dc‐biased spherical or infinite cylindrical electrode to which a radio frequency potential is applied. The initial Maxwellian velocity distribution of the plasma is approximated by a multiple water bag distribution. The instantaneous response of the plasma to a sinusoidal potential applied to the electrode is calculated in the electrostatic approximation. Transient and nonlinear effects can be modeled in this way. Ions are usually treated as fixed, but some runs include ion dynamics with an ion/electron mass ratio of 16. Data produced by the code include the instantaneous particle flux and electric field at the electrode surface, from which the RF admittance is calculated. Results are presented for spheres in the frequency range 0.1 ω pe to 3 ω pe , RF amplitudes of 1–9 kT/el, and antenna radii of 1 and 10 λ D . Here ω pe is the electron plasma frequency and λ D is the Debye shielding distance. The code reproduces the admittance behavior expected near the antenna‐plasma series resonance. Some evidence for RF modification of the sheath is seen well above the frequency of the series resonance.

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