Plasma wakes driven by Compton scattering: Non-linear regime and particle acceleration

Fuente: arXiv
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Auteurs principaux: Grismayer, Thomas, Del Gaudio, Fabrizio, Silva, Luís O.
Format: Preprint
Publié: 2026
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author Grismayer, Thomas
Del Gaudio, Fabrizio
Silva, Luís O.
author_facet Grismayer, Thomas
Del Gaudio, Fabrizio
Silva, Luís O.
contents We investigate plasma wake generation via Compton scattering from photon bursts, a non-ponderomotive process relevant when the photon wavelength is smaller than the interparticle distance but larger than the Compton wavelength. In this regime, electrons can reach relativistic velocities. We extend linear theory to the nonlinear regime, showing that plasma waves can reach the wave-breaking limit. Perfectly collimated drivers produce wakes propagating at the speed of light, allowing electron phase-locking (limited by driver depletion). Non-collimated drivers induce subluminal phase velocities, limiting acceleration via dephasing. Two-dimensional simulations reveal unique transverse fields compared to laser wakefields, with a DC magnetic field leading to consistent focusing. The work considers observational prospects in laboratory and astrophysical scenarios such as around highly luminous compact objects (e.g., pulsars, gamma-ray bursts) interacting with tenuous interstellar or intergalactic plasmas, where conditions favor Comptondominated wakefield acceleration.
format Preprint
id arxiv_https___arxiv_org_abs_2601_09596
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Plasma wakes driven by Compton scattering: Non-linear regime and particle acceleration
Grismayer, Thomas
Del Gaudio, Fabrizio
Silva, Luís O.
Plasma Physics
High Energy Astrophysical Phenomena
We investigate plasma wake generation via Compton scattering from photon bursts, a non-ponderomotive process relevant when the photon wavelength is smaller than the interparticle distance but larger than the Compton wavelength. In this regime, electrons can reach relativistic velocities. We extend linear theory to the nonlinear regime, showing that plasma waves can reach the wave-breaking limit. Perfectly collimated drivers produce wakes propagating at the speed of light, allowing electron phase-locking (limited by driver depletion). Non-collimated drivers induce subluminal phase velocities, limiting acceleration via dephasing. Two-dimensional simulations reveal unique transverse fields compared to laser wakefields, with a DC magnetic field leading to consistent focusing. The work considers observational prospects in laboratory and astrophysical scenarios such as around highly luminous compact objects (e.g., pulsars, gamma-ray bursts) interacting with tenuous interstellar or intergalactic plasmas, where conditions favor Comptondominated wakefield acceleration.
title Plasma wakes driven by Compton scattering: Non-linear regime and particle acceleration
topic Plasma Physics
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2601.09596