English

Dephasingless laser wakefield acceleration in the bubble regime

Accelerator Physics 2023-08-28 v1 Computational Physics Plasma Physics

Abstract

Laser wakefield accelerators (LWFAs) have electric fields that are orders of magnitude larger than those of conventional accelerators, promising an attractive, small-scale alternative for next-generation light sources and lepton colliders. The maximum energy gain in a single-stage LWFA is limited by dephasing, which occurs when the trapped particles outrun the accelerating phase of the wakefield. Here, we demonstrate that a single space-time structured laser pulse can be used for ionization injection and electron acceleration over many dephasing lengths in the bubble regime. Simulations of a dephasingless laser wakefield accelerator driven by a 6.2-J laser pulse show 25 pC of injected charge accelerated over 20 dephasing lengths (1.3 cm) to a maximum energy of 2.1 GeV. The space-time structured laser pulse features an ultrashort, programmable-trajectory focus. Accelerating the focus, reducing the focused spot-size variation, and mitigating unwanted self-focusing stabilize the electron acceleration, which improves beam quality and leads to projected energy gains of 125 GeV in a single, sub-meter stage driven by a 500-J pulse.

Keywords

Cite

@article{arxiv.2308.13432,
  title  = {Dephasingless laser wakefield acceleration in the bubble regime},
  author = {Kyle G. Miller and Jacob R. Pierce and Manfred V. Ambat and Jessica L. Shaw and Kale Weichman and Warren B. Mori and Dustin H. Froula and John P. Palastro},
  journal= {arXiv preprint arXiv:2308.13432},
  year   = {2023}
}

Comments

18 pages, 4 figures

R2 v1 2026-06-28T12:04:24.689Z