Relativistic two-wave resonant acceleration of electrons at large-amplitude standing whistler waves during laser-plasma interaction

Fuente: arXiv
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Main Authors: Sano, Takayoshi, Isayama, Shogo, Takahashi, Kenta, Matsukiyo, Shuichi
Format: Preprint
Published: 2024
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author Sano, Takayoshi
Isayama, Shogo
Takahashi, Kenta
Matsukiyo, Shuichi
author_facet Sano, Takayoshi
Isayama, Shogo
Takahashi, Kenta
Matsukiyo, Shuichi
contents The interaction between a thin foil target and a circularly polarized laser light injected along an external magnetic field is investigated numerically by particle-in-cell simulations. A standing wave appears at the front surface of the target, overlapping the injected and partially reflected waves. Hot electrons are efficiently generated at the standing wave due to the relativistic two-wave resonant acceleration if the magnetic field amplitude of the standing wave is larger than the ambient field. A bifurcation occurs in the gyration motion of electrons, allowing all electrons with non-relativistic velocities to acquire relativistic energy through the cyclotron resonance. The optimal conditions for the highest energy and the most significant fraction of hot electrons are derived precisely through a simple analysis of test-particle trajectories in the standing wave. Since the number of hot electrons increases drastically by many orders of magnitude compared to the conventional unmagnetized cases, this acceleration could be a great advantage in laser-driven ion acceleration and its applications.
format Preprint
id arxiv_https___arxiv_org_abs_2411_17492
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Relativistic two-wave resonant acceleration of electrons at large-amplitude standing whistler waves during laser-plasma interaction
Sano, Takayoshi
Isayama, Shogo
Takahashi, Kenta
Matsukiyo, Shuichi
Plasma Physics
High Energy Astrophysical Phenomena
The interaction between a thin foil target and a circularly polarized laser light injected along an external magnetic field is investigated numerically by particle-in-cell simulations. A standing wave appears at the front surface of the target, overlapping the injected and partially reflected waves. Hot electrons are efficiently generated at the standing wave due to the relativistic two-wave resonant acceleration if the magnetic field amplitude of the standing wave is larger than the ambient field. A bifurcation occurs in the gyration motion of electrons, allowing all electrons with non-relativistic velocities to acquire relativistic energy through the cyclotron resonance. The optimal conditions for the highest energy and the most significant fraction of hot electrons are derived precisely through a simple analysis of test-particle trajectories in the standing wave. Since the number of hot electrons increases drastically by many orders of magnitude compared to the conventional unmagnetized cases, this acceleration could be a great advantage in laser-driven ion acceleration and its applications.
title Relativistic two-wave resonant acceleration of electrons at large-amplitude standing whistler waves during laser-plasma interaction
topic Plasma Physics
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2411.17492