Fazeli Reza
Faculty of Science, Lahijan Branch, Islamic Azad University, Lahijan 4416939515, Iran.
Phys Rev E. 2022 Jun;105(6-2):065210. doi: 10.1103/PhysRevE.105.065210.
The laser wakefield acceleration of monoenergetic multi-GeV electron beams in the bubble regime is investigated via particle-in-cell simulations considering laser guiding of sub-petawatt pulses by an optimized plasma waveguide. The density profile of the plasma has a transverse transition from a low value for the laser guiding central channel to an optimal higher value for the surrounding plasma. Multidimensional particle-in-cell simulations in the nonlinear bubble regime show that when the spot size of the Gaussian laser pulse is matched to the diameter of the low-density laser-guiding plasma channel, electron self-injection can be transversely provided from the surrounding high-density plasma mitigating the need for a minimum electron density of the low-density channel to trigger the self-injection. Accordingly, the pump depletion and electron dephasing lengths can be increased by reducing the electron density of the axial channel, and the electron bunch can be accelerated to considerably longer distances. As a result, the energy gain of the trapped electrons, injected from the surrounding high-density region, can be efficiently enhanced. Under such conditions, a completely localized electron bunch with considerably decreased energy spread (<2%) and enhanced peak energy (∼2.5GeV) is accelerated over a length of ∼6mm by a sub-petawatt laser pulse (∼86TW).
通过粒子模拟,考虑用优化的等离子体波导对亚拍瓦脉冲进行激光引导,研究了泡状区域中多GeV单能电子束的激光尾场加速。等离子体的密度分布具有横向过渡,从激光引导中心通道的低值过渡到周围等离子体的最佳高值。非线性泡状区域的多维粒子模拟表明,当高斯激光脉冲的光斑尺寸与低密度激光引导等离子体通道的直径匹配时,可以从周围的高密度等离子体横向提供电子自注入,从而减少了低密度通道触发自注入所需的最小电子密度。因此,通过降低轴向通道的电子密度,可以增加泵浦耗尽长度和电子去相长度,并且电子束可以加速到更长的距离。结果,从周围高密度区域注入的被俘获电子的能量增益可以得到有效提高。在这种条件下,一个完全局域化的电子束,其能量分散显著降低(<2%)且峰值能量增强(约2.5GeV),由一个亚拍瓦激光脉冲(约86TW)在约6mm的长度上加速。