Relativistically-strong electromagnetic waves in magnetized plasmas
Abstract
Using a two-fluid approach, we consider the properties of relativistically nonlinear (arbitrary ), circularly polarized \EM\ waves propagating along magnetic field in electron-ion and pair plasmas. Dispersion relations depend on how wave intensity scales with frequency, . For superluminal branches, the nonlinear effects reduce the cut-off frequency, while the general form of the dispersion relations remains similar to the linear case. For subluminal waves, whistlers and Alfven, a new effect appears: dispersion curves effectively terminate at finite , where the group velocity becomes zero. Qualitatively, subluminal modes with fluctuating electric field larger than the guide field, , cannot propagate. In extended systems, e.g., within magnetospheres of neutron stars, this leads to opening of the magnetosphere by a strong wave.
Cite
@article{arxiv.2509.17245,
title = {Relativistically-strong electromagnetic waves in magnetized plasmas},
author = {Maxim Lyutikov},
journal= {arXiv preprint arXiv:2509.17245},
year = {2026}
}