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Parametric study of ultra-intense laser interaction with uniform and nano-porous near-critical plasmas

机译:均匀和纳米多孔近临界等离子体的超强激光相互作用的参数研究

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Responses of the uniform near-critical plasma (UNCP) and nano-porous near-critical plasma (NPNCP) upon interaction with a short-intense laser have been scrutinized using two-dimensional (2D) particle-in-cell simulations. Maximum proton energy variation by the deposition of uniform and nano-porous layers in front of a solid target for a wide range of laser intensities (normalized amplitude a 0 = 5–25) and average densities of the front layer n e = 0.3 ? 3 n c (where n c is the critical density) has been parametrically studied. It is found that the proton maximum energy for the front layers with sub-10 μ m thicknesses is independent of the target porosity and density. However, in the relatively thick targets, the nano-porous structure decreases the laser energy absorption and, subsequently, the maximum proton energy compared to the uniform one. The results indicate that by employing UNCPs instead of NPNCPs, at the moderate laser intensity, the maximum proton energy reveals a 23% enhancement. This increment could be explained by rapid self-focusing of the laser pulse and dominant direct laser electron acceleration regime on the well-formed plasma channel in the UNCP layer. However, in the case of NPNCPs, the laser scattering from the plasma structure makes it less intense and more disordered, which influences the efficient laser energy coupling to the electrons.
机译:使用二维(2D)粒子内模拟仔细仔细仔细仔细仔细地仔细仔细地仔细地仔细地仔细地审查了均匀近临时血浆(UNCP)和纳米多孔近临界血浆(NPNCP)。通过在固体靶前沉积的最大质子能量变化,用于宽范围的激光强度(归一化幅度A 0 = 5-25)和前层N E = 0.3的平均密度参数研究,3N C(其中n c是临界密度)。发现具有子10μm厚度的前层的质子最大能量与目标孔隙率和密度无关。然而,在相对较厚的靶标中,纳米多孔结构降低了激光能量吸收,随后,与均匀的靶相比,最大质子能量。结果表明,通过采用基因克斯代替NPNCPS,在中等激光强度下,最大质子能量显示出23%的增强。通过在UNCP层中的井形成等离子体通道上快速自聚焦的激光脉冲和主导直接激光电子加速度的快速自聚焦来解释该增量。然而,在NPNCPS的情况下,来自等离子体结构的激光散射使其不太强烈和更混浊,这影响了高效的激光能量耦合到电子。

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