Undamped electrostatic plasma waves
F. Valentini, D. Perrone, F. Califano, F. Pegoraro, P. Veltri, P. J., Morrison, T. M. O'Neil

TL;DR
This paper investigates undamped electrostatic plasma waves arising from slight deviations from Maxwellian distributions, revealing new modes called corner modes, supported by theoretical analysis and nonlinear simulations, with implications for plasma experiments.
Contribution
It introduces corner modes caused by small plateaus in electron velocity distributions, expanding understanding of undamped plasma waves beyond Maxwellian assumptions.
Findings
Corner modes exist away from the traditional thumb curve.
Plateaus suppress Landau damping, enabling undamped oscillations.
Distribution tail modifications shift wave roots in the dispersion relation.
Abstract
Electrostatic waves in a collision-free unmagnetized plasma of electrons with fixed ions are investigated for electron equilibrium velocity distribution functions that deviate slightly from Maxwellian. Of interest are undamped waves that are the small amplitude limit of nonlinear excitations, such as electron acoustic waves (EAWs). A deviation consisting of a small plateau, a region with zero velocity derivative over a width that is a very small fraction of the electron thermal speed, is shown to give rise to new undamped modes, which here are named {\it corner modes}. The presence of the plateau turns off Landau damping and allows oscillations with phase speeds within the plateau. These undamped waves are obtained in a wide region of the plane ( being the real part of the wave frequency and the wavenumber), away from the well-known `thumb curve' for…
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Taxonomy
TopicsDust and Plasma Wave Phenomena · Laser-induced spectroscopy and plasma · Ionosphere and magnetosphere dynamics
