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Investigating Instabilities of Long, Intense Laser Pulses in Plasma Wakefield Accelerators

机译:调查血浆韦克菲尔德搬运器中长,强烈激光脉冲的不稳定性

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Laser wakefield acceleration (LWFA) is a promising method for reducing the cost and size of the state of the art and industrial accelerators. In the recent AE71 experimental campaign at the Brookhaven National Laboratory, a long (4 ps) powerful (300 GW) CO2 laser pulse was sent into a hydrogen gas to produce plasma wakefields. We analyzed the evolution of the laser numerically and found three distinct regions: where the laser self-modulates, where it is transversely disrupted, and where it self-channels. The laser disruption process is similar to the hosing instability that occurs in particle-beam-driven plasma wakefield accelerators. Although hosing instability has been well studied for particle-driven acceleration, the similar instability for long laser pulses has not been clearly explained, and a technique to prevent it is still lacking. Our numerical simulations were done with Particle-In-Cell code OSIRIS. Here we show the impact that plasma ionization and laser focal position have on the interaction of the laser with the plasma in the three distinct regions.
机译:激光韦克菲尔德加速(LWFA)是降低艺术状态和工业加速器的成本和规模的有希望的方法。在Brookhaven国家实验室最近的AE71实验活动中,长(4 PS)强大(300 GW)CO 2 将激光脉冲送入氢气中以产生等离子体唤醒场。我们在数控上分析了激光的演变,发现了三个不同的区域:其中激光自我调节,在横向中断的情况下,它是自信的。激光破坏过程类似于粒子束驱动的等离子体韦克菲尔德垫圈中发生的血液升温。虽然对粒子驱动加速度进行了很好地进行了血液稳定性,但是对于长激光脉冲的类似不稳定性尚未清楚地解释,并且防止它仍然缺乏技术。我们的数值模拟是用粒子内代码Osiris完成的。在这里,我们展示了等离子体电离和激光焦点位置对三个不同区域中的等离子体相互作用的影响。

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