Title :
Scattering cross sections and electron transport coefficients for electrons in CF3I
Author :
Miric, J. ; Bosnjakovic, D. ; Sasic, O. ; de Urquijo, J. ; Dujko, S. ; Petrovic, Z. Lj
Author_Institution :
Inst. of Phys., Univ. of Belgrade, Belgrade, Serbia
Abstract :
Summary form only given. Electron transport coefficients and rate coefficients in pure CF3I and its mixtures with Ar, Xe, N2 and SF6 have been calculated for a set of cross-sections which was based on the work of Kimura and Nakamura [1] but which was modified to improve agreement between the calculated swarm parameters and the experimental values. Electron drift velocity, effective ionization coefficient and diffusion coefficients are calculated using a Monte Carlo simulation technique and from solution of the non-conservative Boltzmann equation [2]. Calculated data for pure CF3I and its mixtures with Ar, Xe, N2 and SF6 are compared with those measured under both time-of-flight (TOF) and pulsed-Townsend (PT) conditions. We note the existence of negative differential conductivity (NDC) in the profile of the bulk drift velocity with no signs of the same phenomenon in the profile of flux drift velocity. We systematically study the origin and mechanisms for such phenomena as well as the possible physical implications which arise from their explicit inclusion into plasma models. Spatially-resolved electron transport properties are calculated using a Monte Carlo simulation technique in order to understand these phenomena. Special attention is paid upon the implementation of procedure for compensation of electrons for losses due to strong electron attachment in our Monte Carlo code.
Keywords :
Monte Carlo methods; Townsend discharge; argon; carbon compounds; electron attachment; gas mixtures; nitrogen; plasma simulation; plasma transport processes; sulphur compounds; xenon; Ar; CF3I; Monte Carlo simulation technique; N2; SF6; Xe; effective diffusion coefficients; effective ionization coefficients; electron drift velocity; gas mixtures; negative differential conductivity; nonconservative Boltzmann equation; plasma models; pulsed-Townsend conditions; scattering cross sections; spatially-resolved electron transport properties; swarm parameter calculation; time-of-flight conditions; Approximation methods; Electron mobility; Monte Carlo methods; Scattering; Sulfur hexafluoride; Xenon;
Conference_Titel :
Plasma Sciences (ICOPS), 2015 IEEE International Conference on
Conference_Location :
Antalya
DOI :
10.1109/PLASMA.2015.7179595