气体射流中激光诱导爆炸波碰撞产生的过临界急梯度等离子体板:在高能质子加速中的应用

J. Marquès, P. Loiseau, J. Bonvalet, M. Tarisien, E. D'humieres, J. Domange, F. Hannachi, L. Lancia, O. Larroche, P. Nicolaï, P. Puyuelo-Valdes, L. Romagnani, J. Santos, V. Tikhonchuk
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引用次数: 10

摘要

在超高强度激光应用中,产生高重复率的薄高密度等离子体板是一个关键问题。基于两个反向传播的爆炸波(BW)在气体射流中的传播和碰撞,我们提出了一种制造等离子体板的方案。每个BW都是由沿射流一侧传播的纳秒激光束引起的突然和局部加热发射的。由此产生的圆柱形BW垂直于光束扩展。激波锋面被气体喷射密度梯度弯曲,推动和压缩等离子体向喷射中心移动。通过使用两个平行的ns激光束,该方案能够独立定制射流的两个相对的侧面,同时避免了与反向传播激光束相关的损坏风险。使用二维和三维流体力学以及动力学模拟进行了参数化研究。BWs的弯曲与停滞状态下的碰撞相结合,使密度增加了10倍以上,并产生了非常薄(低至几微米),接近过临界的等离子体板,密度对比度高(> 100),寿命为几百皮秒。采用二维细胞内粒子模拟研究了等离子体裁剪对高强度亚皮秒激光脉冲质子加速的影响。不仅在ps脉冲的入口侧剪裁等离子体,而且在出口侧也剪裁等离子体,增强了质子束准直,显著增加了高能质子的数量及其最大能量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Over-critical sharp-gradient plasma slab produced by the collision of laser-induced blast-waves in a gas jet: Application to high-energy proton acceleration
The generation of thin and high density plasma slabs at high repetition rate is a key issue for ultra-high intensity laser applications. We present a scheme to create such plasma slabs, based on the propagation and collision in a gas jet of two counter-propagating blast waves (BW). Each BW is launched by a sudden and local heating induced by a nanosecond laser beam that propagates along the side of the jet. The resulting cylindrical BW expands perpendicular to the beam. The shock front, bent by the gas jet density gradient, pushes and compresses the plasma toward the jet center. By using two parallel ns laser beams, this scheme enables to tailor independently two opposite sides of the jet, while avoiding the damage risks associated with counterpropagating laser beams. A parametric study is performed using two and three dimensional hydrodynamic, as well as kinetic simulations. The BWs bending combined with the collision in a stagnation regime increases the density by more than 10 times and generates a very thin (down to few microns), near to over-critical plasma slab with a high density contrast (> 100), and a lifetime of a few hundred picoseconds. Two dimensional particle-in-cell simulations are used to study the influence of plasma tailoring on proton acceleration by a high-intensity sub-picosecond laser pulse. Tailoring the plasma not only at the entrance but also the exit side of the ps-pulse enhances the proton beam collimation, increases significantly the number of high energy protons, as well as their maximum energy.
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