论文标题
控制激光效率加速气泡状态中电子束极化
Control of electron beam polarization in the bubble regime of laser-wakefield acceleration
论文作者
论文摘要
通过Thomas-Bargmann-Michel-Michel-Telegdi方程,研究了高强度激光与纵向前极化等离子体之间相互作用之间相互作用的电子束极化。使用测试粒子模型,详细分析了加速电子极化对气泡几何形状的依赖性。跟踪单个电子的极化动力学表明,尽管自旋方向在自我注射过程和加速阶段都发生了变化,但前者的影响最大。对于几乎球形的气泡,在气泡中捕获和加速后电子束的极化持续存在。相比之下,对于非球体气泡形状,电子束会迅速去极化,并且在扁平球体气泡的情况下,净极化方向甚至可以逆转。这些发现是通过粒子中的模拟确认的。
Electron beam polarization in the bubble regime of the interaction between a high-intensity laser and a longitudinally pre-polarized plasma is investigated by means of the Thomas-Bargmann-Michel-Telegdi equation. Using a test-particle model, the dependence of the accelerated electron polarization on the bubble geometry is analyzed in detail. Tracking the polarization dynamics of individual electrons reveals that although the spin direction changes during both the self-injection process and acceleration phase, the former has the biggest impact. For nearly spherical bubbles, the polarization of electron beam persists after capture and acceleration in the bubble. By contrast, for aspherical bubble shapes, the electron beam becomes rapidly depolarized, and the net polarization direction can even reverse in the case of a oblate spheroidal bubble. These findings are confirmed via particle-in-cell simulations.