论文标题
簇等离子体中的非线性韦克菲尔德和电子注入
Nonlinear wakefields and electron injection in cluster plasma
论文作者
论文摘要
激光和光束驱动的韦克菲尔德承诺,用于将来应用的粒子加速器的电场梯度的数量级增加。要探索的关键领域包括生成的梁的发射特性,并克服了等离子体中的脱落极限。在本文中,使用高分辨率二维粒子中的模拟提供了对无均匀簇等离子体的自我注射机制对Wakefield结构的首次深入研究。由高压气射流弹出气体引起的典型结构的簇的直径比激光波长小得多。为导致颗粒捕获的基本机制提供了结论性证据,比较了均匀和簇等离子体病例。通过更改群集参数,发现加速的电子束性能可调节。该机制解释了增强的束电荷,并配对大型横向动量和能量,这对Betatron X射线通量具有影响。最后,讨论了簇对高功率激光传播行为的影响。
Laser and beam driven wakefields promise orders of magnitude increases in electric field gradients for particle accelerators for future applications. Key areas to explore include the emittance properties of the generated beams and overcoming the dephasing limit in the plasma. In this paper, the first in-depth study of the self-injection mechanism into wakefield structures from non-homogeneous cluster plasmas is provided using high-resolution two dimensional particle-in-cell simulations. The clusters which are typical structures caused by ejection of gases from a high-pressure gas jet have a diameter much smaller than the laser wavelength. Conclusive evidence is provided for the underlying mechanism that leads to particle trapping, comparing uniform and cluster plasma cases. The accelerated electron beam properties are found to be tunable by changing the cluster parameters. The mechanism explains enhanced beam charge paired with large transverse momentum and energy which has implications for the betatron x-ray flux. Finally, the impact of clusters on the high-power laser propagation behavior is discussed.