论文标题
集体QED签名的粒子减速
Particle Deceleration for Collective QED Signatures
论文作者
论文摘要
在QED级联产生的电子峰值对等离子体中,已提出频率上升作为集体效应的第一个实验签名。由于高效的生成对质量将减少任何频率变化,因此在实验室框架中最小的Lorentz因子的停止对被认为是对激光升级的主要贡献。但是,我们证明,仅考虑停止粒子过度忽略了在激光传播方向上重新加速颗粒的贡献。重新加速的颗粒应根据粒子的基础,更强烈地影响激光器,并在更长的时间尺度上影响激光器。为了最大程度地提高粒子对激光升级的贡献,我们认为Laguerre-Gaussian(LG)模式可以更好地反映生成的对。与高斯光束相比,LG模式在粒子减速和重新加速方面没有优势,但是LG模式可以在更长的持续时间内维持颗粒的贡献,从而使更多的成对密度积累。用结构化光束减速以使对在激光器中的成对应产生更大的升级,从而降低对驾驶激光的需求。
Frequency upshifts have been proposed as a first experimental signature of collective effects in QED cascade generated electron-positron pair plasmas. Since the high effective masses of generated pairs will reduce any frequency change, stopped pairs at minimal Lorentz factor in the lab frame were thought to be the dominant contribution to the the laser upshift. However, we demonstrate that only considering stopped particles unduly neglects the contributions of particles re-accelerated in the laser propagation direction. Re-accelerated particles should, on a per particle basis, affect the laser more strongly, and over a much longer timescale. To maximize particle contributions to the laser upshift, we consider a Laguerre-Gaussian (LG) mode to better reflect generated pairs. The LG mode doesn't have an advantage in particle deceleration and re-acceleration when compared against a Gaussian beam, but the LG mode can maintain particle contributions for a longer duration, allowing for more pair density accumulation. Deceleration with a structured beam to keep pairs within the laser should create a larger upshift, thereby lowering the demands on the driving laser.