• DocumentCode
    227045
  • Title

    Experimental and numerical studies on nonlinear plasma series resonance effect in capacitively coupled radio frequency glow discharge plasma by homogeneous discharge model

  • Author

    Bora, B. ; Soto, Leopoldo

  • Author_Institution
    Comision Chilena de Energia Nucl., Santiago, Chile
  • fYear
    2014
  • fDate
    25-29 May 2014
  • Firstpage
    1
  • Lastpage
    1
  • Abstract
    Self-excited nonlinear plasma series resonance (PSR) heating is observed in low pressure capacitvely coupled radio frequency (CCRF) plasma as high-frequency oscillations superimposed on the normal radio frequency current. This high-frequency contribution to the radio frequency current is generated by a series resonance between the capacitive sheath and the inductive and resistive bulk plasma and lead to increased the plasma density1. A negative dc potential is also known to develops between the bulk plasma and the power electrodes, which is termed as `self bias´ in RF plasma and make the CCRF plasma suitable for different material processing applications. This self bias is generated as a result of the geometrical asymmetry of the electrodes, which can be achieved by appropriately design the area of the powered and the grounded electrodes. However, independent control of the dc self bias in single frequency CCRF plasma is not possible, since the changing in any operating parameters including geometrical asymmetry will also change the plasma parameters. In addition, no such dc self bias is generated in geometrically symmetric CCRF plasma. A study on the dual frequency CCRF plasma could be useful in understanding the separate control of the dc self bias and plasma density, which respectively determine the ion energy and ion flux. Another aspect of the study on the dual radio frequency plasma could be the generation of the dc self bias in geometrically symmetric CCRF plasma. In our previous work, we have studied the PSR effect1 and developed a geometrical symmetric CCRF plasma model2,3 on the based on homogeneous discharge model4. In this work, details on the results obtained for independent control of ion energy and ion flux, generation of dc self bias in geometrically symmetric CCRF plasma and PSR heating in single as well as dual frequency CCRF glow discharge plasma will be discussed. In addition, preliminary studies on t- e extension of the model to atmospheric pressure rf plasma torches will be also presented.
  • Keywords
    electrodes; glow discharges; high-frequency discharges; numerical analysis; plasma density; plasma nonlinear processes; plasma oscillations; plasma radiofrequency heating; plasma sheaths; plasma torches; atmospheric pressure rf plasma torches; capacitive sheath; dc self bias; dual frequency CCRF plasma; grounded electrodes; high-frequency oscillations; homogeneous discharge model; inductive bulk plasma; ion energy; ion flux; low pressure capacitively coupled radio frequency glow discharge plasma; material processing application; negative dc potential; plasma density; plasma parameters; power electrodes; pressure 1 atm; resistive bulk plasma; self-excited nonlinear plasma series resonance heating; Discharges (electric); Electrodes; Frequency control; Glow discharges; Heating; Plasmas; Radio frequency;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Plasma Sciences (ICOPS) held with 2014 IEEE International Conference on High-Power Particle Beams (BEAMS), 2014 IEEE 41st International Conference on
  • Conference_Location
    Washington, DC
  • Print_ISBN
    978-1-4799-2711-1
  • Type

    conf

  • DOI
    10.1109/PLASMA.2014.7012147
  • Filename
    7012147