Influence of finite geometrical asymmetry of the electrodes in capacitively coupled radio frequency plasma

Bora, B; Soto L.

Abstract

Capacitively coupled radio frequency (CCRF) plasmas are widely studied in last decades due to the versatile applicability of energetic ions, chemically active species, radicals, and also energetic neutral species in many material processing fields including microelectronics, aerospace, and biology. A dc self-bias is known to generate naturally in geometrically asymmetric CCRF plasma because of the difference in electrode sizes known as geometrical asymmetry of the electrodes in order to compensate electron and ion flux to each electrode within one rf period. The plasma series resonance effect is also come into play due to the geometrical asymmetry and excited several harmonics of the fundamental in low pressure CCRF plasma. In this work, a 13.56MHz CCRF plasma is studied on the based on the nonlinear global model of asymmetric CCRF discharge to understand the influences of finite geometrical asymmetry of the electrodes in terms of generation of dc self-bias and plasma heating. The nonlinear global model on asymmetric discharge has been modified by considering the sheath at the grounded electrode to taking account the finite geometrical asymmetry of the electrodes. The ion density inside both the sheaths has been taken into account by incorporating the steady-state fluid equations for ions considering that the applied rf frequency is higher than the typical ion plasma frequency. Details results on the influences of geometrical asymmetry on the generation of dc self-bias and plasma heating are discussed. (C) 2014 AIP Publishing LLC.

Más información

Título según WOS: Influence of finite geometrical asymmetry of the electrodes in capacitively coupled radio frequency plasma
Título de la Revista: PHYSICS OF PLASMAS
Volumen: 21
Número: 8
Editorial: AMER INST PHYSICS
Fecha de publicación: 2014
Idioma: English
DOI:

10.1063/1.4893148

Notas: ISI