Electron-field instability: Excitation of electron plasma waves by an electric field

Author:

Beving L. P.1ORCID,Hopkins M. M.2ORCID,Baalrud S. D.13ORCID

Affiliation:

1. Applied Physics Program, University of Michigan 1 , Ann Arbor, Michigan 48109, USA

2. Applied Optical and Plasma Sciences, Sandia National Laboratories 2 , Albuquerque, New Mexico 87185, USA

3. Department of Nuclear Engineering and Radiological Sciences, University of Michigan 3 , Ann Arbor, Michigan 48109, USA

Abstract

Electric fields are commonplace in plasmas and affect transport by driving currents and, in some cases, instabilities. The necessary condition for instability in collisionless plasmas is commonly understood to be described by the Penrose criterion, which quantifies a sufficient relative drift between different populations of particles that must be present for wave amplification via inverse Landau damping. For example, electric fields generate drifts between electrons and ions that can excite the ion-acoustic instability. Here, we use particle-in-cell simulations and linear stability analysis to show that the electric field can drive a fundamentally different type of kinetic instability, named the electron-field instability. This instability excites electron plasma waves with wavelengths ≳30λDe, has a growth rate that is proportional to the electric field strength, and does not require a relative drift between electrons and ions. The Penrose criterion does not apply when accounting for the electric field. The large value of the observed frequency, near the electron plasma frequency, further distinguishes it from the standard ion-acoustic instability, which oscillates near the ion plasma frequency. The ubiquity of macroscopic electric fields in quasineutral plasmas suggests that this instability is possible in a host of systems, including low-temperature and space plasmas. In fact, damping from neutral collisions in such systems is often not enough to completely damp the instability, adding to the robustness of the instability across plasma conditions.

Funder

Office of Science

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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