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Collimated GeV proton beam generated by the interaction of ultra-intense laser with a uniform near-critical underdense plasma

机译:超强激光与均匀的近临界低密度等离子体相互作用产生的准直GeV质子束

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摘要

An ultra-intense short-pulsed laser interacting with a uniform underdense plasma with near-critical density is investigated by 2.5-dimensional particle-in-cell simulations. It is found that a collimated proton beam with maximum energy up to the GeV was generated. The corresponding proton acceleration mechanism is analyzed. The laser wakefield acceleration (LWFA) electrons play an important role as a driving beam. Due to the features of LWFA electrons, quasi-monoenergetic distribution and good collimation, the protons can be accelerated for a long distance by the charge-separated electric field. The proton beam in this regime is also well collimated and the amount can reach several nC. Moreover, it is found that the LWFA electrons can overtake the laser and stand quasi-synchronized in the center of pulse. Therefore the electrons can absorb energy from the laser and transfer it to the protons like in the break-out afterburner (BOA) scheme in laser irradiated on ultra-thin film target.
机译:通过2.5维粒子模拟,研究了与具有接近临界密度的均匀低密度等离子体相互作用的超强短脉冲激光。发现产生了具有直至GeV的最大能量的准直质子束。分析了相应的质子加速机理。激光尾波加速(LWFA)电子作为驱动束起着重要作用。由于LWFA电子的特性,准单能分布和良好的准直性,质子可以通过电荷分离的电场长距离加速。在这种情况下,质子束也可以很好地准直,其量可以达到几nC。此外,发现LWFA电子可以超过激光,并在脉冲中心准同步。因此,电子可以吸收激光的能量并将其转移到质子上,就像在超薄膜靶上照射激光时的爆发后燃器(BOA)方案一样。

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