Plasma species and reaction dynamic-oriented global model studies for microscale argon discharges

ORAL

Abstract

Low temperature microplasma discharges have emerging applications in biomedicine, satellite propulsion, electric device and more[Garner et al, J. Appl. Phys 128, 210903 (2020) and Fu et al Plasma Res. Express 2, 013001 (2020)]. In this work, a global model is employed to explore the importance of plasma species (e, Ar+, Ar2+, Arm, Arr, Ar4p, Ar2*) and reaction dynamics for RF current source-driven argon discharges in a sub-millimeter gap. The model shows that Ar2+ starts to be the main ion species above 100 Torr, and Ar2* is the main metastable neutrals for pressure higher than 200 Torr. The wall loss process of Ar2+ is less important compared to the recommendation reaction with electrons in the bulk. For fixed driving current and gap at atmosphere, the plasma density (mainly e and Ar2+) increases first and then gets relatively flat with increasing driving frequency (0.1-2GHz), meanwhile, the main loss channel of Ar2+ transits from wall loss to bulk recombination. We also intend to explore the similarity law of different plasma species densities, and their generation and loss process for various pressures, gap distances, and driving frequencies.

*This work was supported by the Air Force Office of Scientific Research (AFOSR) MURI Grant FA9550-21-1-0367 and NSF-DOE Partnership Grant for DE-SC0022078.

Publication: planned paper: plasma species and reaction dynamic-oriented global model studies for microscale argon discharges

Presenters

  • De-Qi Wen

    • Michigan State University

Authors

  • De-Qi Wen

    • Michigan State University
  • Peng Zhang

    • Michigan State University
  • You-Nian Wang

    • Dalian University of Technology
    • Dalian University of Technolpgy
    • Dalian University of Technology, China
  • John P. Verboncoeur

    • Michigan State University
    • Department of Electrical and Computer Engineering, Michigan State University