Title :
Time-dependent global model for electronegative high-density plasma discharges
Author :
Yoon, H.J. ; Chung, Tae Hun ; Lee, Jung Keun
Author_Institution :
Dong-A Univ., Pusan, South Korea
Abstract :
Summary form only given, as follows. We develop a global model of high-density plasma discharges in molecular gases. The global model consists of the energy and particle balance equations for neutral and ionic species. The energy balance equation includes energy-loss for electron-neutral collisions, and electronic excitation, dissociation, ionization, dissociative attachment, and recombination. Particle balance equations are written for all species of interest. For a specified discharges length and diameter, absorbed power, pressure, reaction rate coefficients and surface recombination constants, we solve these equations to determine all species densities and the election temperature. High-density discharges such as inductively coupled plasma sources typically operate at low pressure of 1-20 mTorr and high input powers of 1-3 kW. Pulsed-time modulation of the input power has been used to improve processing rates and etch selectivity in high-density discharges. We investigate plasma characteristics of a pulse-time modulated high-density discharge using volume averaged global model. Also, we calculate the fractional dissociation and the ratio of the negative ion density to the electron density as a function of the wall recombination constant.
Keywords :
discharges (electric); dissociation; electron attachment; ion recombination; ions; negative ions; plasma collision processes; plasma density; 1 to 20 mtorr; 1 to 3 kW; dissociation; dissociative attachment; election temperature; electron density; electron-neutral collisions; electronegative high-density plasma discharges; electronic excitation; energy balance equations; fractional dissociation; high-density discharges; inductively coupled plasma sources; ionic species; ionization; molecular gases; negative ion density; neutral species; particle balance equations; pulse-time modulated high-density discharge; pulsed-time modulation; reaction rate coefficients; recombination; surface recombination constants; time-dependent global model; volume averaged global model; wall recombination constant; Equations; Fault location; Gases; Ionization; Plasma applications; Plasma sources; Plasma temperature; Pulse modulation; Spontaneous emission; Surface discharges;
Conference_Titel :
Plasma Science, 1997. IEEE Conference Record - Abstracts., 1997 IEEE International Conference on
Conference_Location :
San Diego, CA, USA
Print_ISBN :
0-7803-3990-8
DOI :
10.1109/PLASMA.1997.604419