Title :
Laser ionization and radiofrequency sustainment of high-pressure seeded plasmas
Author :
Kelly, K.L. ; Scharer, J.E. ; Paller, E.S.
Author_Institution :
Wisconsin Univ., Madison, WI, USA
Abstract :
Summary form only given. The feasibility of using a low-ionization potential organic seed gas to initiate a high-pressure plasma discharge is examined. Laser photoionization of the working gas creates a high-density initial condition that eliminates the need for capacitive breakdown of the gas to form the plasma. The seed gas, tetrakis(dimethylamino)ethylene, has an ionization potential of 6.1 eV, and is ionized by ultraviolet laser photon absorption forming a plasma column. The plasma is sustained through inductive coupling of radiofrequency fields to the plasma through collisional damping. The laser initiation of 2-6 mTorr of the seed gas in 1-150 Torr of argon is accomplished producing steady-state plasma densities of the order n/sub e//spl sim/10/sup 12/ cm/sup -3/ in a volume of 300 cubic centimeters with RF power densities of 5-10 Watts per cubic centimeter. The dependence of the complex antenna impedance on the plasma density and neutral gas pressure is examined. The coupling can be described by absorption of the fields into a lossy plasma medium. Antenna design is aided by understanding the radial absorption profile of the inductive radiofrequency fields, and how these fields are excited by various antenna designs.
Keywords :
antennas in plasma; argon; damping; high-frequency discharges; organic compounds; photoionisation; plasma collision processes; plasma density; plasma pressure; plasma production by laser; 1 to 150 torr; 150 torr; 2 to 6 mtorr; 5 to 10 W; 50 to 150 torr; 80 torr; Ar; antenna design; azimuthally symmetric helical coil; capacitive breakdown; collisional damping; complex antenna impedence; high pressure; high-density initial condition; high-pressure plasma discharge; high-pressure seeded plasmas; inductive coupling; inductive radiofrequency fields; ionization potential; laser initiation; laser ionization; laser photoionization; lossy plasma medium; low-ionization potential organic seed gas; neutral gas pressure; optimum partial pressure; organic seed gas; plasma; plasma column; plasma density; power densities; radial absorption profile; radiofrequency fields; radiofrequency power; radiofrequency sustainiment; radiofrequency-sustained seeded plasma; recombination losses; seed gas; steady-state plasma densities; tetrakis(dimethylamino)ethylene; two-body recombination coefficient; ultraviolet laser photon absorption; wave fields; working gas; Argon; Damping; Electric breakdown; Electromagnetic wave absorption; Gas lasers; Ionization; Plasma density; Power lasers; Radio frequency; Steady-state;
Conference_Titel :
Pulsed Power Plasma Science, 2001. IEEE Conference Record - Abstracts
Conference_Location :
Las Vegas, NV, USA
Print_ISBN :
0-7803-7141-0
DOI :
10.1109/PPPS.2001.961047