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Electron energy and electron trajectories in an inverse free-electron laser accelerator based on a novel electrostatic wiggler

机译:基于新型静电摆动器的逆自由电子激光加速器中的电子能量和电子轨迹

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We expand here a theory of a high-gradient laser-excited electron accelerator based on an inverse free-electron laser (inverse-FEL), but with innovations in the structure and design. The electrostatic wiggler used in our scheme, namely termed the Paul wiggler, is generated by segmented cylindrical electrodes with applied oscillatory voltages V-osc(t) over 90 degrees segments. The inverse-FEL interaction can be described by the equations that govern the electron motion in the combined fields of both the laser pulse and Paul wiggler field. A numerical study of electron energy and electron trajectories has been made using the fourth-order Runge-Kutta method. The results indicate that the electron attains a considerable energy at short distances in this device. It is found that if the electron has got sufficient suitable wiggler amplitude intensities, it can not only gain higher energy in longer distances, but also can retain it even after the passing of the laser pulse. In addition, the results reveal that the electron energy gains different peaks for different initial axial velocities, so that a suitable small initial axial velocity of e-beam produces substantially high energy gain. With regard to the transverse confinement of the electron beam in a Paul wiggler, there is no applied axial guide magnetic field in this device.
机译:我们在此扩展基于逆自由电子激光器(inverse FEL)的高梯度激光激发电子加速器的理论,但在结构和设计上有所创新。在我们的方案中使用的静电摆动器(称为Paul摆动器)是由分段的圆柱形电极产生的,这些分段的圆柱形电极在90度段上施加了振荡电压V-osc(t)。可通过控制激光脉冲和Paul Wiggler场的组合场中电子运动的方程式来描述反FEL相互作用。使用四阶Runge-Kutta方法对电子能量和电子轨迹进行了数值研究。结果表明,在该装置中,电子在短距离内获得了相当大的能量。已经发现,如果电子具有足够的合适的摆动幅度强度,则它不仅可以在更长的距离上获得更高的能量,而且即使在激光脉冲通过之后也可以保留它。另外,结果表明,对于不同的初始轴向速度,电子能量获得不同的峰,从而合适的较小的电子束初始轴向速度产生了相当高的能量增益。关于在保罗·维格勒(Paul wiggler)中电子束的横向限制,在该装置中没有施加轴向引导磁场。

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