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  • 1
    Electronic Resource
    Electronic Resource
    Springer
    Plasma chemistry and plasma processing 6 (1986), S. 437-456 
    ISSN: 1572-8986
    Keywords: RF plasmas ; electron energy distribution function ; energy transfer
    Source: Springer Online Journal Archives 1860-2000
    Topics: Chemistry and Pharmacology , Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics , Technology
    Notes: Abstract Based on the nonstationary electron Boltzmann equation this paper deals with the time-resolved electron kinetics in the rf plasma in CO, i.e., with the calculation of the temporal evolution of the energy distribution and of the resultant macroscopic quantities for the established steady state. A particular aspect of this plasma is the distinctly resonance-like behavior of the vibrational excitation of the CO molecules by electron collisions. This causes the lumped frequencies for energy and impulse dissipation in collisions, recently introduced in the study of the rf kinetics in Ne and H2, to become extremely dependent on the electron energy. Despite this fact, it could be verified that the field frequency dependence of the temporal evolution of the electron kinetics can be interpreted by means of these two dissipation frequencies even under such complicated conditions as given by the atomic data in CO.
    Type of Medium: Electronic Resource
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  • 2
    Electronic Resource
    Electronic Resource
    Springer
    Plasma chemistry and plasma processing 7 (1987), S. 245-265 
    ISSN: 1572-8986
    Keywords: rf plasma ; electron kinetics ; Boltzmann equation ; electron energy distribution function
    Source: Springer Online Journal Archives 1860-2000
    Topics: Chemistry and Pharmacology , Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics , Technology
    Notes: Abstract This paper deals with the self-consistent determination of the rf field amplitude for sustaining the steady-state collision-dominated weakley ionized plasmas in the bulk of the rf discharge and of the time-resolved behavior of the isotropic part of the distribution function as well as of relevant macroscopic quantities in plasmas whose particle loss is dominantly determined by electron attachment. The strict timeresolved treatment is based on the nonstationary Boltzmann equation of the electrons and its numerical solution including, apart from electron number conservative collision processes, the electron attachment and ionization. The investigations are related to an rf plasma in a model gas and in SF6 and are performed for reduced rf field frequencies around 10 MHz Torr−1 which are of particular interest from the point of application of rf discharges for plasma processing. The numerical results show that a large field amplitude of around 160 V cm−1 Torr−1 is necessary to maintain the discharge and that the isotropic distribution, the relevant collision frequencies for attachment and ionization, and the electron density undergo a large modulation during a period of the rf field.
    Type of Medium: Electronic Resource
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  • 3
    Electronic Resource
    Electronic Resource
    Springer
    Plasma chemistry and plasma processing 8 (1988), S. 399-424 
    ISSN: 1572-8986
    Keywords: SiH4 ; SiH4−H2 mixtures ; electron energy distribution function ; rf discharges ; modulation
    Source: Springer Online Journal Archives 1860-2000
    Topics: Chemistry and Pharmacology , Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics , Technology
    Notes: Abstract Electron energy distribution functions (EDF) in SiH4, SiH4−H2 radiofrequency discharges have been calculated by solving the time-dependent Boltzmann equation in the presence of a sinusoidal field. Particular emphasis is given to the modulation of EDF as a function of the applied frequency (π·106≤ω/p 0 ≤π·108 sec−1 torr−1) and of gas composition. The results show that at ω/p 0 = π·106 sec−1 torr−1 EDF follows in a quasistationary mode the variation of the field with the exception of a small range of electric field near to the zero crossing. Still, at the higher considered frequency (ω/p 0 =π·108 sec−1 torr−1), we observe some modulation of EDF. The necessity of using a time-dependent approach is tested by comparing the present results with the corresponding ones obtained by using the effective field approximation (i.e., the approximation which solves instead of the time-dependent Boltzmann equation the corresponding stationary one at the effective values $$E = E_o /\sqrt 2$$ of the rf field). The two sets of results can differ by orders of magnitude in the tail of EDF, the differences decreasing with increasing molar fraction of H2 and increasing field frequency. The role of excited states (second-kind collisions) is studied by inserting in the Boltzmann equation given concentrations of vibrational and electronic states. The results show that second-kind collisions strongly affect EDF especially in pure silane. Finally a satisfactory agreement has been found between theoretical and experimental results concerning the modulation of electrons of given energy in pure silane discharges.
    Type of Medium: Electronic Resource
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