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激光和电子从激光等离子体加速器中的横向非对称性中偏转。

Laser and electron deflection from transverse asymmetries in laser-plasma accelerators.

机构信息

Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA.

出版信息

Phys Rev E. 2019 Dec;100(6-1):063208. doi: 10.1103/PhysRevE.100.063208.

Abstract

We report on the deflection of laser pulses and accelerated electrons in a laser-plasma accelerator (LPA) by the effects of laser pulse front tilt and transverse density gradients. Asymmetry in the plasma index of refraction leads to laser steering, which can be due to a density gradient or spatiotemporal coupling of the laser pulse. The transverse forces from the skewed plasma wave can also lead to electron deflection relative to the laser. Quantitative models are proposed for both the laser and electron steering, which are confirmed by particle-in-cell simulations. Experiments with the BELLA Petawatt Laser are presented which show controllable 0.1-1 mrad laser and electron beam deflection from laser pulse front tilt. This has potential applications for electron beam pointing control, which is of paramount importance for LPA applications.

摘要

我们报告了激光脉冲在激光等离子体加速器(LPA)中因激光脉冲前沿倾斜和横向密度梯度的影响而发生的偏折和被加速电子的偏折。等离子体折射率的不对称导致了激光转向,这种转向可能是由于密度梯度或激光脉冲的时空耦合引起的。倾斜等离子体波的横向力也会导致电子相对于激光的偏折。提出了用于激光和电子转向的定量模型,这些模型通过粒子模拟得到了证实。展示了使用 BELLA Petawatt 激光进行的实验,该实验表明可以通过激光脉冲前沿倾斜控制激光和电子束的 0.1-1 毫弧度的偏转。这对于电子束指向控制具有潜在的应用价值,这对于 LPA 的应用至关重要。

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