English

Collimated Hard X-Rays from Hybrid Laser and Plasma Wakefield Accelerators

Plasma Physics 2025-06-13 v2

Abstract

We report a synergistic enhancement of betatron radiation based on the hybrid laser and plasma wakefield acceleration scheme. Quasi-phase-stable acceleration in an up-ramp plasma density first generates GeV-energy electron beams that act as a drive beam for PWFA, which then further accelerates the witness beam to GeV energies, enhancing both photon energy and flux. A full width at half maximum divergence (6.1±1.9)×(5.8±1.6)(6.1 \pm 1.9)\times(5.8\pm 1.6) mrad2^2 of betatron radiation, a critical energy of 71±871 \pm 8 keV, and an average flux of more than 101410^{14} photons per steradian above 5 keV were all experimentally obtained thanks to this scheme, which was an order of magnitude higher than the previous reports. Quasi-three-dimensional particle-in-cell simulations were used to model the acceleration and radiation of the electrons in our experimental conditions, establishing a new paradigm for compact collimated hard X-ray sources.

Keywords

Cite

@article{arxiv.2506.06833,
  title  = {Collimated Hard X-Rays from Hybrid Laser and Plasma Wakefield Accelerators},
  author = {Hong Zhang and Jianmeng Wei and Mengyuan Chu and Jiale Zheng and Zhiheng Lou and Ruoxuan Ma and Xizhuan Chen and Hao Wang and Gaojie Zeng and Hang Guo and Yinlong Zheng and Hai Jiang and Yanjie Ge and Kangnan Jiang and Runshu Hu and Jiayi Qian and Jiacheng Zhu and Zongxin Zhang and Yi Xu and Yuxin Leng and Song Li and Ke Feng and Wentao Wang and Ruxin Li},
  journal= {arXiv preprint arXiv:2506.06833},
  year   = {2025}
}

Comments

7 pages,6 figures,

R2 v1 2026-07-01T03:05:02.378Z