通过选择相对强度短激光脉冲照射目标的起伏参数来控制加速粒子的能量分布

M. Sedov, K. Platonov, A. Andreev
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引用次数: 0

摘要

激光产生的等离子体的二次发射受电子分布函数控制。因此,它的控制对于控制诸如高能光子和离子的超短爆发等发射具有决定性的应用至关重要。在我们的理论分析中,包括与最近实验的比较,我们遵循这条路线,研究能量如何从短激光脉冲转移到快离子和x射线的能量。我们利用离子和Kα发射对电子分布函数分支的不同响应,通过目标表面的结构优化激光吸收。我们的研究包括用飞秒近红外激光脉冲和几微米厚度的钛箔靶产生的激光强度高达5×1020 W/cm2。特别是,我们揭示了热电子的能量弛豫过程,这决定了观测到的二次发射对激光强度的依赖,并指出了在不同优化方案下目标表面结构的好处。激光产生的等离子体的二次发射受电子分布函数控制。因此,它的控制对于控制诸如高能光子和离子的超短爆发等发射具有决定性的应用至关重要。在我们的理论分析中,包括与最近实验的比较,我们遵循这条路线,研究能量如何从短激光脉冲转移到快离子和x射线的能量。我们利用离子和Kα发射对电子分布函数分支的不同响应,通过目标表面的结构优化激光吸收。我们的研究包括用飞秒近红外激光脉冲和几微米厚度的钛箔靶产生的激光强度高达5×1020 W/cm2。特别地,我们揭示了热电子的能量松弛过程,这决定了观测到的二次发射对激光强度的依赖,并指出了目标表面结构的好处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controlling the energy distribution of accelerated particles by choosing the relief parameters of the target irradiated by a short laser pulse of relativistic intensity
Secondary emission from laser produced plasma is governed by the electron distribution function. Therefore, its control is of utmost importance to steer the emission e.g. of ultra-short bursts of high energy photons and ions for decisive application. In our theoretical analysis including comparison to recent experiments we follow this route and study how the energy is transferred from short laser pulse to the energy of fast ions and X-rays. We make use of ion and Kα emission which respond differently to branches of the electron distribution function when we optimize the laser light absorption via structuring of the target surface. Our investigation comprises laser intensities up to 5×1020 W/cm2 produced with femtosecond near infrared laser pulses and Titanium foil targets of a few micrometer thicknesses. In particular, we reveal an energy relaxation process of hot electrons, which determines the observed laser intensity dependence of secondary emission and points to the benefit of target surface structuring in different optimization scenarios.Secondary emission from laser produced plasma is governed by the electron distribution function. Therefore, its control is of utmost importance to steer the emission e.g. of ultra-short bursts of high energy photons and ions for decisive application. In our theoretical analysis including comparison to recent experiments we follow this route and study how the energy is transferred from short laser pulse to the energy of fast ions and X-rays. We make use of ion and Kα emission which respond differently to branches of the electron distribution function when we optimize the laser light absorption via structuring of the target surface. Our investigation comprises laser intensities up to 5×1020 W/cm2 produced with femtosecond near infrared laser pulses and Titanium foil targets of a few micrometer thicknesses. In particular, we reveal an energy relaxation process of hot electrons, which determines the observed laser intensity dependence of secondary emission and points to the benefit of target surface structuri...
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