Simulations of ion acceleration from ultrathin targets with the VEGA petawatt laser

L. C. Stockhausen, R. Torres, E. Conejero Jarque
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引用次数: 1

Abstract

The Spanish Pulsed Laser Centre (CLPU) is a new high-power laser facility for users. Its main system, VEGA, is a CPA Ti:Sapphire laser which, in its final phase, will be able to reach petawatt peak powers in pulses of 30 fs with a pulse contrast of 1 : 1010 at 1 ps. The extremely low level of pre-pulse intensity makes this system ideally suited for studying the laser interaction with ultrathin targets. We have used the particle-in-cell (PIC) code OSIRIS to carry out 2D simulations of the acceleration of ions from ultrathin solid targets under the unique conditions provided by VEGA, with laser intensities up to 1022Wcm-2 impinging normally on 5 - 40 nm thick overdense plasmas, with different polarizations and pre-plasma scale lengths. We show how signatures of the radiation pressure dominated regime, such as layer compression and bunch formation, are only present with circular polarization. By passively shaping the density gradient of the plasma, we demonstrate an enhancement in peak energy up to tens of MeV and monoenergetic features. On the contrary linear polarization at the same intensity level causes the target to blow up, resulting in much lower energies and broader spectra. One limiting factor of Radiation Pressure Acceleration is the development of Rayleigh-Taylor like instabilities at the interface of the plasma and photon fluid. This results in the formation of bubbles in the spatial profile of laser-accelerated proton beams. These structures were previously evidenced both experimentally and theoretically. We have performed 2D simulations to characterize this bubble-like structure and report on the dependency on laser and target parameters.
用VEGA千瓦激光器模拟超薄目标的离子加速
西班牙脉冲激光中心(CLPU)是一个新的高功率激光设备为用户。它的主要系统VEGA是一个CPA Ti:蓝宝石激光器,在其最后阶段,将能够在30秒的脉冲中达到佩瓦的峰值功率,在1 ps时脉冲对比度为1:10 10。极低的预脉冲强度使该系统非常适合研究激光与超薄目标的相互作用。我们利用粒子池(PIC)代码OSIRIS,在VEGA提供的独特条件下,对超薄固体靶中离子的加速进行了二维模拟,激光强度高达1022Wcm-2,正常撞击5 ~ 40nm厚的超密等离子体,具有不同的极化和等离子体前尺度长度。我们展示了辐射压力主导的特征,如层压缩和束形成,如何只存在于圆偏振中。通过被动地塑造等离子体的密度梯度,我们证明了峰值能量的增强高达几十MeV和单能特征。相反,在相同强度水平下的线偏振会使目标爆炸,产生更低的能量和更宽的光谱。辐射压力加速的一个限制因素是等离子体和光子流体界面上瑞利-泰勒样不稳定性的发展。这导致在激光加速质子束的空间剖面中形成气泡。这些结构先前在实验和理论上都得到了证实。我们进行了二维模拟来表征这种气泡状结构,并报告了对激光和目标参数的依赖性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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