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Electron dynamics and particle transport in capacitively coupled Ar/O<sub>2</sub> discharges driven by sawtooth up voltage waveform

ORAL

Abstract

One dimensional fluid/electron Monte Carlo simulations of capacitively coupled Ar/O2 discharges driven by sawtooth voltage waveforms are performed as a function of the number of consecutive harmonics driving frequencies of 13.56 MHz, N, pressure and gas mixture. The effects of these external parameters on the electron dynamics, and the transport of ions and neutrals are revealed. The combination of a decrease in the mean free path of electrons and the presence of the Electrical Asymmetry Effect result in different distributions of the ionization rate, which lead to a reduction in the amplitude of the DC self-bias at higher pressures. As the admixture of electronegative O2 increases, the electronegativity is enhanced, and the discharge mode changes from an α – Drift Ambipolar (DA) hybrid to DA mode. This work focuses on linking these fundamental changes of the plasma physics induced by changing external parameters to process relevant particle fluxes to the electrodes. Particular attention is paid to O(1D) flux, because it is a precursor of deposition. In discharges driven by sawtooth up voltage waveforms, placing the substrate on the grounded electrode and increasing the number of consecutive harmonics, N, can facilitate the deposition process, since the O(1D) flux to the substrate is higher in these scenarios. Moreover, at an O2 admixture of 20%, the O(1D) flux is nearly as high as that at an O2 admixture of 90%, indicating that a higher O(1D) flux can be achieved without excessively increasing the O2 admixture.

Publication: Wan Dong et al 2025 Plasma Sources Sci. Technol. 34 025008

Presenters

  • Wan Dong

    Dalian University of Technology, Key Laboratory of Materials Modification by Laser, Ion, and Electron Beams (Ministry of Education), School of Physics, Dalian University of Technology, Dalian

Authors

  • Wan Dong

    Dalian University of Technology, Key Laboratory of Materials Modification by Laser, Ion, and Electron Beams (Ministry of Education), School of Physics, Dalian University of Technology, Dalian

  • Zhuo-Yao Gao

    Dalian University of Technology

  • Li Wang

    Chair of Applied Electrodynamics and Plasma Technology, Ruhr University Bochum, Bochum, Germany, Ruhr University Bochum

  • Zhuo-Yao Gao

    Dalian University of Technology

  • Zhuo-Yao Gao

    Dalian University of Technology

  • Yong-Xin Liu

    Dalian University of Technology

  • Yuanhong Song

    School of Physics, Dalian University of Technology, Dalian, China, Dalian University of Technology, Key Laboratory of Materials Modification by Laser, Ion, and Electron Beams (Ministry of Education), School of Physics, Dalian University of Technology, Dalian

  • Julian Schulze

    Ruhr University Bochum