J. Cikhardt, M. Gyrdymov, S. Zähter, P. Tavana, M. M. Günther, N. Bukharskii, N. Borisenko, J. Jacoby, X. F. Shen, A. Pukhov, N. E. Andreev, O. N. Rosmej
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引用次数: 0
摘要
研究了中等相对论强度的亚皮秒激光脉冲与近临界密度等离子体相互作用时产生的定向 X 射线。在相对论激光通道中的电子直接激光加速(DLA)过程中,当电子在自生的准静态电场和磁场中发生横向贝塔射线振荡时,会产生类似同步加速器(贝塔射线)的辐射。在 PHELIX 激光系统的一次实验中,以 1019 W/cm2 的激光强度测量到了大电流定向 DLA 电子束,其平均能量是深思动势的十倍,最大能量高达 100 MeV。使用与激光脉冲传播轴成 0° 和 10° 的两组罗斯滤波器,对 5-60 keV 范围内的定向 X 射线光谱进行了评估。利用差分 X 射线吸收法可以绝对测量随角度变化的光子通量。我们的报告显示,在与激光轴线成 0°的位置测量到的光子数量为 1013 个/sr,能量为 >5 keV,亮度为 1021 光子 s-1 mm-2 mrad-2(0.1%BW)-1。发射角分布的全宽均方根(FWHM)为 14°-16°。由于具有超高光子通量、点状辐射源和超短发射时间,基于 DLA 的 keV 背光源有望在千焦耳石油瓦级激光设备的高能量密度研究中得到广泛应用。
Characterization of bright betatron radiation generated by direct laser acceleration of electrons in plasma of near critical density
Directed x-rays produced in the interaction of sub-picosecond laser pulses of moderate relativistic intensity with plasma of near-critical density are investigated. Synchrotron-like (betatron) radiation occurs in the process of direct laser acceleration (DLA) of electrons in a relativistic laser channel when the electrons undergo transverse betatron oscillations in self-generated quasi-static electric and magnetic fields. In an experiment at the PHELIX laser system, high-current directed beams of DLA electrons with a mean energy ten times higher than the ponderomotive potential and maximum energy up to 100 MeV were measured at 1019 W/cm2 laser intensity. The spectrum of directed x-rays in the range of 5–60 keV was evaluated using two sets of Ross filters placed at 0° and 10° to the laser pulse propagation axis. The differential x-ray absorption method allowed for absolute measurements of the angular-dependent photon fluence. We report 1013 photons/sr with energies >5 keV measured at 0° to the laser axis and a brilliance of 1021 photons s−1 mm−2 mrad−2 (0.1%BW)−1. The angular distribution of the emission has an FWHM of 14°–16°. Thanks to the ultra-high photon fluence, point-like radiation source, and ultra-short emission time, DLA-based keV backlighters are promising for various applications in high-energy-density research with kilojoule petawatt-class laser facilities.
期刊介绍:
Matter and Radiation at Extremes (MRE), is committed to the publication of original and impactful research and review papers that address extreme states of matter and radiation, and the associated science and technology that are employed to produce and diagnose these conditions in the laboratory. Drivers, targets and diagnostics are included along with related numerical simulation and computational methods. It aims to provide a peer-reviewed platform for the international physics community and promote worldwide dissemination of the latest and impactful research in related fields.