Title :
Nonlocal kinetic theory of plasma discharges
Author :
Kaganovich, I.D. ; Sydorenko, D. ; Khrabrov, A.V. ; Raitses, Y. ; Demidov, V.I. ; Schweigert, Irina ; Mustafaev, Alexander S.
Author_Institution :
Princeton Plasma Phys. Lab., Princeton Univ., Princeton, NJ, USA
Abstract :
Summary form only given. The purpose of the talk is to describe recent advances in nonlocal electron kinetics in low-pressure plasmas. Low-pressure discharges are widely used in industry as the main plasma sources for many applications including plasma processing, discharge lighting, plasma propulsion, particle beam sources and nanotechnology. Being partially-ionized, bounded, and weakly-collisional, the plasmas in these discharges demonstrate nonlocal electron kinetic effects, nonlinear processes in the sheaths, beam-plasma interaction, collisionless electron heating, etc. Such plasmas often have a non-Maxwellian electron velocity distribution function. The plethora of kinetic processes supporting the non-equilibrium plasma state is an invaluable tool, which can be used to adjust plasma parameters to the specific needs of a particular plasma application. We report on recent advances in nonlocal electron kinetics in low-pressure plasmas where a non-Maxwellian electron velocity distribution function was “designed” for a specific purpose: in dc discharges with auxiliary biased electrodes for plasma control, hybrid DC/RF magnetized and unmagnetized plasma sources, and Hall thruster discharges. We show using specific examples that this progress was made possible by synergy between full-scale particle-in-cell simulations, analytical models, and experiments. Examples of recent progress are described in Special Section of Physics of Plasmas “Electron kinetic effects in low temperature plasmas” [1] and Special Issue of Plasma Sources Science and Technology “Transport in B-fields in low-temperature plasmas” [2].
Keywords :
flow control; high-frequency discharges; plasma accelerators; plasma beam injection heating; plasma kinetic theory; plasma magnetohydrodynamics; plasma materials processing; plasma nonlinear processes; plasma sheaths; plasma simulation; plasma sources; plasma-wall interactions; Electron kinetic effects; Hall thruster discharges; Plasma Sources Science and Technology Transport in B-fields in low-temperature plasmas; analytical model; auxiliary biased electrodes; beam-plasma interaction; bounded plasmas; collisionless electron heating; dc discharges; discharge lighting; full-scale particle-in-cell simulations; hybrid DC/RF magnetized plasma sources; kinetic processes; low-pressure discharges; low-pressure plasmas; main plasma sources; nanotechnology; nonMaxwellian electron velocity distribution function; nonequilibrium plasma state; nonlinear processes; nonlocal electron kinetic effects; nonlocal electron kinetics; nonlocal kinetic theory; partially-ionized plasmas; particle beam sources; plasma application; plasma control; plasma discharges; plasma parameters; plasma processing; plasma propulsion; sheaths; unmagnetized plasma sources; weakly-collisional plasmas; Discharges (electric); Educational institutions; Fault location; Kinetic theory; Plasma sources;
Conference_Titel :
Plasma Sciences (ICOPS) held with 2014 IEEE International Conference on High-Power Particle Beams (BEAMS), 2014 IEEE 41st International Conference on
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4799-2711-1
DOI :
10.1109/PLASMA.2014.7012494