Enhanced energy gain through higher-order resonances during direct laser acceleration with superluminal phase velocity

Fuente: arXiv
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Main Authors: Yeh, I-Lin, Tangtartharakul, Kavin, Bhakta, Rohan, Tang, Hongmei, Willingale, Louise, Arefiev, Alexey
Format: Preprint
Published: 2025
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author Yeh, I-Lin
Tangtartharakul, Kavin
Bhakta, Rohan
Tang, Hongmei
Willingale, Louise
Arefiev, Alexey
author_facet Yeh, I-Lin
Tangtartharakul, Kavin
Bhakta, Rohan
Tang, Hongmei
Willingale, Louise
Arefiev, Alexey
contents Ultra-high intensity laser-plasma interactions can produce ultra-relativistic electrons via direct laser acceleration, assisted by quasi-static plasma magnetic and electric fields. These fields transversely confine electron motion and induce betatron oscillations. The net energy gain is strongly influenced by the interplay between two frequencies: the betatron frequency and the frequency of laser field oscillations experienced by the electron. Prior work has shown that energy gain is enabled by a resonance between the betatron oscillations and the oscillations of the laser field. In particular, higher-order resonances occur when the laser field completes multiple cycles during one betatron oscillation, allowing additional regimes of energy transfer beyond the fundamental (betatron) resonance. In this work, we demonstrate that such resonances become particularly effective when the laser's phase velocity is superluminal. Although the two frequencies generally evolve differently with increasing electron energy, which leads to detuning, a superluminal phase velocity introduces a non-monotonic frequency ratio with a global minimum. This minimum allows sustained frequency matching over a broad energy range, thereby enabling enhanced energy gain. As the phase velocity increases, the betatron resonance becomes ineffective due to premature frequency detuning. At the same time, higher-order resonances become increasingly effective, emerging as the dominant mechanisms for enhanced energy gain in this regime of direct laser acceleration.
format Preprint
id arxiv_https___arxiv_org_abs_2505_10669
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Enhanced energy gain through higher-order resonances during direct laser acceleration with superluminal phase velocity
Yeh, I-Lin
Tangtartharakul, Kavin
Bhakta, Rohan
Tang, Hongmei
Willingale, Louise
Arefiev, Alexey
Plasma Physics
Accelerator Physics
Optics
Ultra-high intensity laser-plasma interactions can produce ultra-relativistic electrons via direct laser acceleration, assisted by quasi-static plasma magnetic and electric fields. These fields transversely confine electron motion and induce betatron oscillations. The net energy gain is strongly influenced by the interplay between two frequencies: the betatron frequency and the frequency of laser field oscillations experienced by the electron. Prior work has shown that energy gain is enabled by a resonance between the betatron oscillations and the oscillations of the laser field. In particular, higher-order resonances occur when the laser field completes multiple cycles during one betatron oscillation, allowing additional regimes of energy transfer beyond the fundamental (betatron) resonance. In this work, we demonstrate that such resonances become particularly effective when the laser's phase velocity is superluminal. Although the two frequencies generally evolve differently with increasing electron energy, which leads to detuning, a superluminal phase velocity introduces a non-monotonic frequency ratio with a global minimum. This minimum allows sustained frequency matching over a broad energy range, thereby enabling enhanced energy gain. As the phase velocity increases, the betatron resonance becomes ineffective due to premature frequency detuning. At the same time, higher-order resonances become increasingly effective, emerging as the dominant mechanisms for enhanced energy gain in this regime of direct laser acceleration.
title Enhanced energy gain through higher-order resonances during direct laser acceleration with superluminal phase velocity
topic Plasma Physics
Accelerator Physics
Optics
url https://arxiv.org/abs/2505.10669