Davoine X, Lefebvre E, Rechatin C, Faure J, Malka V
CEA, DAM, DIF, Bruyères-le-Châtel, 91297 Arpajon, France.
Phys Rev Lett. 2009 Feb 13;102(6):065001. doi: 10.1103/PhysRevLett.102.065001. Epub 2009 Feb 10.
A cold optical injection mechanism for a laser-plasma accelerator is described. It relies on a short, circularly polarized, low-energy laser pulse counterpropagating to and colliding with a circularly polarized main pulse in a low density plasma. Contrary to previously published optical injection schemes, injection is not caused here by electron heating. Instead, the collision between the pulses creates a spatially periodic and time-independent beat force. This force can block the longitudinal electron motion, leading to their entry and injection into the propagating wake. In a specific setup, we compute after acceleration over 0.6 mm, a 60 MeV, 50 pC electron bunch with 0.7 MeV rms energy spread, proving the interest of this scheme to inject electron bunches with a narrow absolute energy spread. Acceleration to 3 GeV with a rms spread smaller than 1% is computed after propagation over 3.8 cm in a plasma channel.
描述了一种用于激光等离子体加速器的冷光注入机制。它依赖于一个短的、圆偏振的、低能量激光脉冲与一个圆偏振主脉冲在低密度等离子体中反向传播并碰撞。与先前发表的光注入方案相反,这里的注入不是由电子加热引起的。相反,脉冲之间的碰撞产生了一个空间周期性且与时间无关的拍频力。这个力可以阻止纵向电子运动,导致它们进入并注入到传播的尾波中。在一个特定的设置中,我们计算出在加速超过0.6毫米后,得到一个能量为60兆电子伏特、电荷量为50皮库、均方根能量展宽为0.7兆电子伏特的电子束,证明了该方案对于注入具有窄绝对能量展宽的电子束的价值。在等离子体通道中传播3.8厘米后,计算出加速到3吉电子伏特且均方根展宽小于1%的情况。