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Influence of micromachined targets on laser accelerated proton beam profiles

机译:微机械靶对激光加速质子梁轮廓的影响

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摘要

High intensity laser-driven proton acceleration from micromachined targets is studied experimentally in the target-normal-sheath-acceleration regime. Conical pits are created on the front surface of flat aluminium foils of initial thickness 12.5 and 3 mu m using series of low energy pulses (0.5-2.5 mu J). Proton acceleration from such micromachined targets is compared with flat foils of equivalent thickness at a laser intensity of 7 x 10(19) W cm(-2). The maximum proton energy obtained from targets machined from 12.5 mu m thick foils is found to be slightly lower than that of flat foils of equivalent remaining thickness, and the angular divergence of the proton beam is observed to increase as the depth of the pit approaches the foil thickness. Targets machined from 3 mu m thick foils, on the other hand, show evidence of increasing the maximum proton energy when the depths of the structures are small. Furthermore, shallow pits on 3 mu m thick foils are found to be efficient in reducing the proton beam divergence by a factor of up to three compared to that obtained from flat foils, while maintaining the maximum proton energy.
机译:实验在目标正常鞘加速度方案中实验研究了来自微机械靶的高强度激光驱动的质子加速度。使用一系列低能脉冲(0.5-2.5μm),在初始厚度12.5和3μm的扁平铝箔的前表面上产生圆锥形坑。将来自这种微机械靶的质子加速与等效厚度的平坦箔,其激光强度为7×10(19)W cm(-2)。从12.5μm厚的箔加工的目标获得的最大质子能量略低于等效剩余厚度的扁平箔的质子能量,并且由于坑的深度接近的深度而被观察到质子梁的角度发散箔厚度。另一方面,当结构的深度小时,从3μm厚的箔加工的目标从3 mu m厚的箔。此外,发现与从扁平箔获得的相比,在3μm厚的箔上的浅凹坑在将质子束发散降低至三个倍数,同时保持最大的质子能量。

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