Vlasov Simulations of Ladder Climbing and Autoresonant Acceleration of Langmuir Waves

POSTER

Abstract

The energy of plasma waves can be moved up and down the spectrum using chirped modulations of plasma parameters, which can be driven by external fields. Depending on the discreteness of the wave spectrum, this phenomenon is called ladder climbing (LC) or autroresonant acceleration (AR) of plasmons, and was first proposed by Barth \textit{et al. }[Barth \textit{et al.} PRL \textbf{115} 075001 (2015)] based on a linear fluid model. Here, we report a demonstration of LC/AR from first principles using fully nonlinear Vlasov simulations of collisionless bounded plasma [Hara \textit{et al.} PoP \textbf{22} 022104 (2015)]. We show that, in agreement to the basic theory, plasmons survive substantial transformations of the spectrum and are destroyed only when their wave numbers become large enough to trigger Landau damping.

*The work was supported by the NNSA SSAA Program through DOE Research Grant No. DE-NA0002948 and the DTRA Grant No. HDTRA1-11-1-0037

Authors

  • Kentaro Hara

    • Texas A\&M University
  • Ido Barth

    • Princeton Plasma Physics Laboratory
    • Princeton University
  • Erez Kaminski

    • Birmingham-Southern College
  • I. Y. Dodin

    • Princeton Plasma Physics Laboratory, Princeton University
    • Princeton University, PPPL
  • Nathaniel J. Fisch

    • Princeton Plasma Physics Laboratory, Princeton University
    • Princeton Univ
    • Princeton Plasma Physics Laboratory
    • Department of Astrophysical Sciences, Princeton University
    • Princeton University