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激光与等离子体相互作用产生Betatron辐射源的研究进展

阿卜杜伍普尔·阿布力米提 欧阳晨 高星兰 温寒 余金清

阿卜杜伍普尔·阿布力米提, 欧阳晨, 高星兰, 等. 激光与等离子体相互作用产生Betatron辐射源的研究进展[J]. 强激光与粒子束. doi: 10.11884/HPLPB202638.250384
引用本文: 阿卜杜伍普尔·阿布力米提, 欧阳晨, 高星兰, 等. 激光与等离子体相互作用产生Betatron辐射源的研究进展[J]. 强激光与粒子束. doi: 10.11884/HPLPB202638.250384
Abdughupur.Ablimit, Ou Yang Chen, Gao Xing Lan, et al. Recent Advances in Betatron Radiation Sources Driven by Laser–Plasma Interactions[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202638.250384
Citation: Abdughupur.Ablimit, Ou Yang Chen, Gao Xing Lan, et al. Recent Advances in Betatron Radiation Sources Driven by Laser–Plasma Interactions[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202638.250384

激光与等离子体相互作用产生Betatron辐射源的研究进展

doi: 10.11884/HPLPB202638.250384
基金项目: 国家自然科学基金项目(12175058, 11921006); 湖南省杰出青年科学基金项目(2024JJ2009)
详细信息
    作者简介:

    阿卜杜伍普尔·阿布力米提,a.ablimit@hnu.edu.cn

  • 中图分类号: O536

Recent Advances in Betatron Radiation Sources Driven by Laser–Plasma Interactions

  • 摘要: 随着超短超强激光技术的飞速发展,激光等离子体加速已成为产生GeV量级高能电子束与高品质辐射源的重要途径。其中,Betatron辐射作为一种机制紧凑、脉冲持续时间达飞秒量级的新型射线源,具有源尺寸小,高亮度等特点。在高能量密度物理、材料科学、成像及超快动态探测与高空间分辨成像等领域展现出巨大应用潜力。系统梳理了激光尾波场加速与直接激光加速两种核心机制产生Betatron辐射的物理原理、研究进展与发展趋势。详细对比了LWFA与DLA两种方案所产生Betatron辐射在关键参数(如光子能量、通量、亮度、能谱与稳定性)上的特性差异,总结了其各自的品质因子与适用场景。最后,展望了该领域未来面临的挑战,如提升光子的中心能量、产额、亮度及转换效率,并为基于下一代强激光大科学装置开展相关实验研究提供了方向性参考。
  • 图  1  通过空泡或blow-out实现电子加速与Betatron辐射的过程示意图[22]

    Figure  1.  Schematic diagram of electron acceleration and Betatron radiation via the bubble/blow-out regime [22]

    图  2  斜波前在尾场中引导电子束的原理图与Betatron X射线产生的实验装置示意图[43]

    Figure  2.  Schematic of electron beam steering by a tilted shock front in a wakefield and the experimental setup for Betatron X-ray generation[43]

    图  3  双阶段混合方案示意图和双级等离子体方案示意图

    Figure  3.  Schematics of the two-stage hybrid scheme and two-stage plasma scheme

    图  4  LWFA产生Betatron X射线源及其相位衬度成像的实验装置示意图与Betatron辐射的特性表征[52].

    Figure  4.  Schematic of the experimental setup for betatron X-ray source generation via LWFA with phase-contrast imaging and characterization of betatron radiation[52]

    图  5  t = 825 fs时等离子体尾波场、电子束、驱动场与激光的空间分布和t = 132 fs(电离时刻)空泡内注入电子的动量分布[55]

    Figure  5.  Spatial distribution of the plasma wakefield, electron beam, driving field and laser at t = 825 fs. And momentum distribution of the injected electrons inside the bubble at the ionization instant t = 132 fs[55]

    图  6  多通道方案示意图和双激光干涉驱动的多等离子体通道时空演化动态[69]

    Figure  6.  (a) Schematic of the proposed multi-channel scheme and spatiotemporal evolution of multi-plasma channel structures formed via the interference of two laser pulses[69]

    图  7  基于激光与金属丝相互作用的高效γ射线产生机制示意图[77]

    Figure  7.  Schematic of the efficientγ-ray generation mechanism based on laser interaction with wires[77]

    图  8  相对论激光与低密度泡沫靶相互作用产生 Betatron 辐射的原理图[81]

    Figure  8.  Schematic of Betatron radiation generation from the interaction of a relativistic laser with a low-density foam target[81]

    表  1  激光器与等离子体产生Betatron 辐射源的统计结果

    Table  1.   Summary of Betatron Radiation Sources Generated by Lasers and Plasmas

    Schemes Laser Power/
    Energy
    Ec/keV Efficiency/% Photon/sr Divergence
    Angle/ (°)
    Peak Brilliance/
    (photons·s−1·mm−2·
    mrad−2· (0.1%bw)−1)
    Reference
    LWFA 1 J 2 $ 1\times {10}^{8} $ (Photon/sr, per shot) 2.9 $ 2.0\times {10}^{22} $ [16]
    5.5 J 50 $ 5\times {10}^{8} \;(\mathrm{Photon}/\mathrm{sr}) $ $ 1.0\times {10}^{23} $ [21]
    2 J 8 10−4 $ 1\times {10}^{8} \;(Photon/sr) $ 0.7 $ 1.0\times {10}^{22} $ [23]
    60 TW 5.2 $ > 5\times {10}^{7} $ (Photon/sr, per shot) $ 2.0\times {10}^{22} $ [27]
    440 TW 36 5×10−3 >50 $ 1.0\times {10}^{17} $ [33]
    100 TW 75 $ 8\times {10}^{8}\; (\mathrm{Photon}/\mathrm{sr},~\mathrm{per}~\mathrm{shot}) $ $ 1.0\times {10}^{23} $ [42]
    200 TW 5~26 $ 2.1\times {10}^{8} $ ($ \mathrm{Photon}/\text{sr} $) $ 1.0\times {10}^{23} $ [43]
    7.7 PW >10 $ 1\times {10}^{9} $ (Photon/0.1%BW) 2 $ 8.0\times {10}^{26} $ [49]
    5.9 kJ ~13 $ 1\times {10}^{14} $ (Photon/sr) 11 $ 1.0\times {10}^{26} $ [50]
    1 PW 22 $ 4\times {10}^{9} $ (Photon/sr, per shot) 0.7 $ 1.0\times {10}^{23} $ [52]
    100 TW 13.5 $ 1\times {10}^{8} $ (Photon/sr, per shot) [54]
    DLA 20 J 10 1.6×10−3 $ 1\times {10}^{13} $ ($ \mathrm{Photon}/\text{sr} $) 14~16 $ 1.0\times {10}^{21} $ [66]
    135 TW 150 0.01 $ 3\times {10}^{10} $ ($ \mathrm{Photon}/\text{sr} $) 2.9 $ 1.2\times {10}^{22} $ [68]
    0.2 $ 2.15\times {10}^{5} $ (Photon/sr+
    Photon/0.1%BW)
    10 $ 4.3\times {10}^{22} $ [72]
    10 PW 1.5 $ 1\times {10}^{10} $ (Photon/0.1%BW) $ 1.0\times {10}^{22} $ [73]
    80 J 5 $ 7\times {10}^{11} $ (Photon/sr) 40 $ 6.0\times {10}^{19} $ [79]
    20 J 5 3.4×10−3 $ 2\times {10}^{8} $ (photons/eV) 5~15 $ 3.3\times {10}^{20} $ [81]
    LWFA+PWFA 500 TW 9 MeV 0.9 $ 3.5\times {10}^{7} $ (Photon/0.1%BW) 0.86 $ 4.4\times {10}^{23} $ [48]
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出版历程
  • 收稿日期:  2025-10-31
  • 修回日期:  2025-12-12
  • 录用日期:  2025-12-16
  • 网络出版日期:  2026-02-09

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