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Optimizing laser-driven proton acceleration from overdense targets

机译:优化来自泛义靶的激光驱动质子加速度

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摘要

We demonstrate how to tune the main ion acceleration mechanism in laser-plasma interactions to collisionless shock acceleration, thus achieving control over the final ion beam properties (e. g. maximum energy, divergence, number of accelerated ions). We investigate this technique with three-dimensional particle-in-cell simulations and illustrate a possible experimental realisation. The setup consists of an isolated solid density target, which is preheated by a first laser pulse to initiate target expansion, and a second one to trigger acceleration. The timing between the two laser pulses allows to access all ion acceleration regimes, ranging from target normal sheath acceleration, to hole boring and collisionless shock acceleration. We further demonstrate that the most energetic ions are produced by collisionless shock acceleration, if the target density is near-critical, ne?≈?0.5?ncr. A scaling of the laser power shows that 100?MeV protons may be achieved in the PW range.
机译:我们展示了如何调整激光等离子体相互作用中的主离子加速机制,从而实现对碰撞休克加速度的控制,从而实现对最终离子束性能的控制(例如,最大能量,分歧,加速离子数量)。我们研究了三维粒子内模拟的这种技术,并说明了可能的实验实现。该设置由分离的固体密度目标组成,其由第一激光脉冲预热以启动目标扩展,以及第二个以触发加速度。两个激光脉冲之间的时序允许访问所有离子加速度调节,从目标正常鞘加速度范围内,孔镗孔和碰撞休克加速度。我们进一步证明,如果目标密度接近关键,Ne in-x 0.5?ncr,我们进一步证明了最精力充沛的离子是由碰撞的冲击加速产生的。激光功率的缩放表明,在PW范围内可以实现100·MEV质子。

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