Title :
Self-consistent kinetic simulations of inductively coupled low-pressure discharges
Author :
Polomarov, O.V. ; Theodosiou, C.E. ; Kaganovich, I.D.
Author_Institution :
Dept. of Phys. & Astron., Toledo Univ., OH, USA
Abstract :
Summary form only given. A self-consistent system of equations is presented for the kinetic description of nonlocal, non-uniform, nearly collisionless plasmas of low-pressure discharges. In low-pressure discharges, where the electron mean free path is larger than or comparable to the discharge length, the electron dynamics is essentially nonlocal. Moreover, the electron energy distribution function (EEDF) deviates considerably from a Maxwellian. Therefore, an accurate kinetic description of the low-pressure discharges requires knowledge of the nonlocal conductivity operator and calculation of the non-Maxwellian EEDF. The previous treatments made use of simplifying assumptions: a uniform density profile and a Maxwellian EEDF. In the present study we derive a self-consistent system of equations for the kinetic description of nonlocal, non-uniform, nearly collisionless plasmas of low-pressure. The system consists of a nonlocal conductivity operator, and an averaged over fast electron bounce motions kinetic equation for the EEDF. A fast Fourier transform method was applied to speed up the numerical simulations. The importance of accounting for the non-uniform plasma density profile for computing the current density profile and the EEDF is demonstrated. Effects of plasma non-uniformity on electron heating in the rf electric field were also studied. An enhancement of the electron heating due to the bounce resonance between the electron bounce motion and the rf electric field has been observed.
Keywords :
current density; discharges (electric); fast Fourier transforms; plasma density; plasma heating; plasma kinetic theory; plasma pressure; plasma simulation; plasma transport processes; Maxwellian electron energy distribution function; bounce resonance; collisionless plasmas; current density profile; electron dynamics; electron heating; electron mean free path; fast Fourier transform method; fast electron bounce motions kinetic equation; inductively coupled low-pressure discharges; kinetic simulations; nonMaxwellian electron energy distribution function; nonlocal conductivity operator; nonuniform plasma density; numerical simulations; plasma nonuniformity; rf electric field effect; self-consistent system; uniform density profile; Conductivity; Distribution functions; Electrons; Fast Fourier transforms; Kinetic theory; Maxwell equations; Numerical simulation; Plasma density; Plasma simulation; Resistance heating;
Conference_Titel :
Plasma Science, 2004. ICOPS 2004. IEEE Conference Record - Abstracts. The 31st IEEE International Conference on
Conference_Location :
Baltimore, MD, USA
Print_ISBN :
0-7803-8334-6
DOI :
10.1109/PLASMA.2004.1339842