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首页> 外文期刊>Plasma physics and controlled fusion >Estimation of direct laser acceleration in laser wakefield accelerators using particle-in-cell simulations
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Estimation of direct laser acceleration in laser wakefield accelerators using particle-in-cell simulations

机译:使用粒子内模拟估算激光尾波加速器中的直接激光加速度

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Many current laser wakefield acceleration (LWFA) experiments are carried out in a regime where the laser pulse length is on the order of or longer than the wake wavelength and where ionization injection is employed to inject electrons into the wake. In these experiments, the electrons can gain a significant amount of energy from the direct laser acceleration (DLA) mechanism as well as the usual LWFA mechanism. Particle-in-cell (PIC) codes are frequently used to discern the relative contribution of these two mechanisms. However, if the longitudinal resolution used in the PIC simulations is inadequate, it can produce numerical heating that can overestimate the transverse motion, which is important in determining the energy gain due to DLA. We have therefore carried out a systematic study of this LWFA regime by varying the longitudinal resolution of PIC simulations and then examining the energy gain characteristics of both the highest-energy electrons and the bulk electrons. By calculating the contribution of DLA to the final energies of the electrons produced from the LWFA, we find that even at the highest longitudinal resolutions, DLA contributes a significant portion of the energy gained by the highest-energy electrons and also contributes to accelerating the bulk of the charge in the electron beam produced by the LWFA.
机译:当前的许多激光尾波场加速(LWFA)实验都是在一种方案中进行的,其中激光脉冲长度约为或大于尾波波长,并且采用电离注入将电子注入尾波。在这些实验中,电子可以从直接激光加速(DLA)机制以及通常的LWFA机制中获取大量能量。单元中粒子(PIC)代码通常用于识别这两种机制的相对作用。但是,如果在PIC仿真中使用的纵向分辨率不足,则会产生数值加热,从而会高估横向运动,这在确定DLA引起的能量增益时很重要。因此,我们通过改变PIC模拟的纵向分辨率,然后研究了高能电子和体电子的能量增益特性,对这种LWFA机制进行了系统的研究。通过计算DLA对LWFA产生的电子最终能量的贡献,我们发现,即使在最高纵向分辨率下,DLA也会贡献最大能量电子所获得能量的很大一部分,并且也有助于加速体积LWFA在电子束中产生的电荷

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