论文标题
通过PW级激光系统的光谱相控制,质子束质量增强
Proton beam quality enhancement by spectral phase control of a PW-class laser system
论文作者
论文摘要
我们报告了用PW级激光 - 帕尔斯辐照的固体箔的实验研究,其中为时间脉冲参数实现了最高的质子截止能量,这些质子脉冲参数与理想的傅立叶变换有限(FTL)脉冲的质子脉冲参数显着变化。通过声学可编程的分散滤波器对驱动器激光器激光的受控光谱相调制使我们能够操纵主脉冲周围的最后一秒钟的时间形状,并研究对薄层箔靶的质子加速度的影响。结果表明,将正三阶色散值应用于短脉冲有利于质子加速度,并且可以在目标正常方向上以18 j激光器的能量在18 j激光器能量的薄塑料箔中获得70 meV的最大能量,与理想压缩的FTL脉冲相比,最大的能量显着增强了最大能量。该论文进一步证明了这种增强效应在使用不同目标材料和厚度以及激光能量和时间强度对比度设置方面具有鲁棒性和适用性。我们证明,使用最先进的高重复率PW激光系统,可以在数月的运行中可靠地实现相关的质子光束质量,并适当控制光谱相和时间对比度条件。
We report on experimental investigations of proton acceleration from solid foils irradiated with PW-class laser-pulses, where highest proton cut-off energies were achieved for temporal pulse parameters that varied significantly from those of an ideally Fourier transform limited (FTL) pulse. Controlled spectral phase modulation of the driver laser by means of an acousto-optic programmable dispersive filter enabled us to manipulate the temporal shape of the last picoseconds around the main pulse and to study the effect on proton acceleration from thin foil targets. The results show that applying positive third order dispersion values to short pulses is favourable for proton acceleration and can lead to maximum energies of 70 MeV in target normal direction at 18 J laser energy for thin plastic foils, significantly enhancing the maximum energy compared to ideally compressed FTL pulses. The paper further proves the robustness and applicability of this enhancement effect for the use of different target materials and thicknesses as well as laser energy and temporal intensity contrast settings. We demonstrate that application relevant proton beam quality was reliably achieved over many months of operation with appropriate control of spectral phase and temporal contrast conditions using a state-of-the-art high-repetition rate PW laser system.