Kim Young-Kuk, Cho Myung-Hoon, Song Hyung Seon, Kang Teyoun, Park Hyung Ju, Jung Moon Youn, Hur Min Sup
School of Electrical and Computer Engineering, UNIST, 50 UNIST-gil, Ulju-gun, Ulsan, 689-798, Korea.
Center for Relativistic Laser Science, Institute for Basic Science (IBS), Gwangju 500-712, Korea.
Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Oct;92(4):043102. doi: 10.1103/PhysRevE.92.043102. Epub 2015 Oct 6.
We investigated ion acceleration by an electrostatic shock in an exploded target irradiated by an ultrashort, circularly polarized laser pulse by means of one- and three-dimensional particle-in-cell simulations. We discovered that the laser field penetrating via relativistic transparency (RT) rapidly heated the upstream electron plasma to enable the formation of a high-speed electrostatic shock. Owing to the RT-based rapid heating and the fast compression of the initial density spike by a circularly polarized pulse, a new regime of the shock ion acceleration driven by an ultrashort (20-40 fs), moderately intense (1-1.4 PW) laser pulse is envisaged. This regime enables more efficient shock ion acceleration under a limited total pulse energy than a linearly polarized pulse with crystal laser systems of λ∼1μm.
我们通过一维和三维粒子模拟研究了超短圆偏振激光脉冲辐照下爆炸靶中静电激波引起的离子加速。我们发现,通过相对论透明性(RT)穿透的激光场迅速加热上游电子等离子体,从而形成高速静电激波。由于基于RT的快速加热以及圆偏振脉冲对初始密度尖峰的快速压缩,设想了一种由超短(20 - 40飞秒)、中等强度(1 - 1.4拍瓦)激光脉冲驱动的激波离子加速新机制。与波长约为1μm的晶体激光系统的线偏振脉冲相比,这种机制在总脉冲能量有限的情况下能够实现更高效的激波离子加速。