• DocumentCode
    867085
  • Title

    Experimental Study of Laser-Initiated Radiofrequency-Sustained High-Pressure Plasmas

  • Author

    Luo, Siqi ; Scharer, John E. ; Thiyagarajan, Magesh ; Denning, C. Mark

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI
  • Volume
    34
  • Issue
    6
  • fYear
    2006
  • Firstpage
    2637
  • Lastpage
    2651
  • Abstract
    Experiments are performed using 193-nm ultraviolet laser preionization of a seed gas in atmospheric pressure range argon and nitrogen to initiate a discharge that is sustained by 13.56-MHz radiofrequency (RF) power using efficient inductive wave coupling. High-density (4.5times1012/cm3 line average density) large-volume (~500 cm3) 760-torr argon plasma is initiated and maintained for more than 400 ms with 2.2 kW of net RF power coupled to the plasma. Using the same technique, a 50-torr nitrogen plasma with line average electron density of 3.5times1011/cm3 is obtained. The nitrogen plasma volume of 1500 cm3 is initiated by the laser and maintained by a net RF power of 3.5 kW for 350 ms. Measurements of the time-varying plasma impedance and optimization of the RF matching for the transition from laser-initiated to RF-sustained plasma are carried out. Both laser-initiated plasmas provide much larger plasma volumes at lower RF power densities than can be obtained by RF alone. Millimeter wave interferometry is used to determine the electron density and the total electron-neutral collision frequency. A new diagnostic technique based on interferometry is developed to evaluate the electron temperature in high-pressure plasmas with inclusion of the neutral heating. Broadband plasma emission spectroscopy is used to illustrate the changes in the ionized species character immediately after the laser pulse and later during the RF pulse
  • Keywords
    argon; high-frequency discharges; nitrogen; plasma beam injection heating; plasma density; plasma diagnostics; plasma production by laser; plasma temperature; preionisation; 13.56 MHz; 193 nm; 2.2 kW; 3.5 kW; 350 ms; 50 torr; 760 torr; Ar; N2; RF matching; atmospheric pressure; electron density; electron temperature; electron-neutral collision frequency; inductive wave coupling; laser-initiated high-pressure plasmas; millimeter wave interferometry; neutral heating; nitrogen plasma volume; plasma emission spectroscopy; radiofrequency-sustained high-pressure plasmas; time-varying plasma impedance; ultraviolet laser preionization; Electrons; Laser transitions; Nitrogen; Plasma density; Plasma diagnostics; Plasma measurements; Plasma temperature; Plasma waves; Power lasers; Radio frequency; Excimer laser; high pressure; interferometry; plasma; radiofrequency (RF);
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2006.885096
  • Filename
    4032897