Pukhov A, Kostyukov I
Institut fur Theoretische Physik I, Heinrich-Heine-Universitat Duesseldorf, 40225 Duesseldorf, Germany.
Phys Rev E Stat Nonlin Soft Matter Phys. 2008 Feb;77(2 Pt 2):025401. doi: 10.1103/PhysRevE.77.025401. Epub 2008 Feb 21.
We show that both the maximum energy gain and the accelerated beam quality can be efficiently controlled by the plasma-density profile. Choosing a proper density gradient one can uplift the dephasing limitation and keep the phase synchronism between the bunch of relativistic particles and the plasma wave over extended distances. Putting electrons into the n th wake period behind the driving laser pulse, the maximum energy gain is increased by the factor, which is proportional to n, over that in the case of uniform plasma. Layered plasma is suggested to keep the resonant condition for laser-wakefield excitation. The acceleration is limited then by laser depletion rather than by dephasing. Further, we show that the natural energy spread of the particle bunch acquired at the acceleration stage can be effectively removed by a matched deceleration stage, where a larger plasma density is used.
我们表明,通过等离子体密度分布可以有效地控制最大能量增益和加速束流的质量。选择合适的密度梯度,可以克服相位失配限制,并使相对论粒子束与等离子体波在较长距离上保持相位同步。将电子置于驱动激光脉冲后的第n个尾波周期,最大能量增益比均匀等离子体情况下增加了与n成正比的因子。建议采用分层等离子体来维持激光尾场激发的共振条件。此时,加速受激光耗尽而非相位失配的限制。此外,我们表明,在加速阶段获得的粒子束的自然能量展宽可以通过一个匹配的减速阶段有效地消除,在该减速阶段使用较大的等离子体密度。