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  • Letter
  • Open Access

Generation of relativistic polarized electron beams via collective beam-target interactions

Xing-Long Zhu1,*, Min Chen2,3, Wei-Min Wang3,4, and Zheng-Ming Sheng2,3,5,†

  • *Contact author: xinglong.zhu@zju.edu.cn
  • †Contact author: zmsheng@sjtu.edu.cn

Phys. Rev. Research 6, L042069 – Published 27 December, 2024

DOI: https://doi.org/10.1103/PhysRevResearch.6.L042069

Abstract

Relativistic polarized electron beams can find applications in broad areas of fundamental physics. Here, we propose that electron spin polarization can be realized efficiently via collective beam-target interactions. When a relativistic unpolarized electron beam is incident onto the surface of a solid target with a grazing angle, strong magnetic fields are induced at the target surface due to the formation of a high reflux of plasma electrons. This results in violent beam self-focusing and corresponding beam density increase via magnetic pinching. The pinched dense beam in turn further enhances the magnetic fields to the level of a few giga-Gauss, which is high enough to trigger strong synchrotron radiation of ultrarelativistic electrons. During the interaction, electron spin polarization develops along the magnetic field direction, which is achieved via radiative spin flips in the quantum radiation-dominated regime. As a consequence, the incident electron beam can be effectively polarized via the spin-dependent radiation reaction, for example, the mean polarization of electrons with energy less than 2 GeV can reach above 50% for an initial 5 GeV beam. This provides a robust way for the development of polarized electron sources.

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