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    Observation of the transverse modulation effect of two-stream instability on low-energy proton beam in low-density plasma

    Guo-Dong Wang1,2,*, Ke-Wei Tao1,*, Rui Cheng1,2,3,†, Wang-Wen Xu4, Jun-Yu Dong3, Lin-Hua Zhen3, Zhao Wang1,2, Ze-Xian Zhou1, Lu-Lin Shi1 et al.

    Yu-Peng Chen1, Jin-Fu Zhang3, Yan-Hong Chen1, Xue-Jian Jin1, Xiao-Xia Wu1, Yu Lei1,3, Yu-Yu Wang1,2,3, Zhang-Hu Hu4,‡, Yan-Shi Zhang1,3,§, and Jie Yang1,2,3

    • *These authors contributed equally to this work.
    • †Contact author: chengrui@impcas.ac.cn
    • ‡Contact author: zhanghu@dlut.edu.cn
    • §Contact author: zhangyanshi@impcas.ac.cn

    Phys. Rev. E 112, 045219 – Published 31 October, 2025

    DOI: https://doi.org/10.1103/fhfl-7l39

    Abstract

    In the field of inertial confinement fusion and ion beam-driven high-energy-density physics, the energy deposition along the beam trajectory is a critical physical parameter. Beyond particle collisions, the collective effects of plasma can significantly affect ion transport. The development of two-stream instability induced by beam-plasma interaction plays a crucial role, as it simultaneously affects the beam structure and its energy transfer. This paper presents an experimental investigation into the transverse modulation effects with a 100 keV proton beam passing through low-density hydrogen plasma. The results demonstrate that the observed beam defocusing phenomenon can be attributed to the excitation of two-stream instability: the diffusion of returning electrons leads to the formation of a radial electric field, which ultimately induces the transverse divergence of the proton beam. Both the numerical simulations based on analytical theoretical methods and particle-in-cell simulations are quantitatively validated, yielding results consistent with the experimental observations. Furthermore, the particle-in-cell simulation results indicate that wave-particle interactions can lead to additional energy loss, which is more significant than collision term. Experimental investigations of the two-stream instability are essential for revealing its underlying dynamics, validating theoretical descriptions, and improving the reliability of the ion beam transport modeling in plasmas.

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