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Generating keV ion distributions for nuclear reactions at near solid-density using intense short-pulse lasers

机译:使用强短脉冲激光为接近固体密度的核反应生成keV离子分布

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摘要

Our understanding of a large range of astrophysical phenomena depends on a precise knowledge of charged particle nuclear reactions that occur at very low rates, which are difficult to measure under relevant plasma conditions. Here, we describe a method for generating dense plasmas at effective ion temperatures >20 keV, sufficient to induce measurable charged particle nuclear reactions. Our approach uses ultra-intense lasers to drive micron-sized, encapsulated nanofoam targets. Energetic electrons generated in the intense laser interaction pass through the foam, inducing a rapid expansion of the foam ions; this results in a hot, near-solid density plasma. We present the laser and target conditions necessary to achieve these conditions and illustrate the system performance using three-dimensional particle-in-cell simulations, outline potential applications and calculate expected nuclear reaction rates in the D(d,n) and 12C(p,γ) systems assuming CD, or CH aerogel foams.
机译:我们对各种各样的天文学现象的理解取决于对以非常低的速率发生的带电粒子核反应的精确了解,而这些反应在相关的等离子体条件下很难测量。在这里,我们描述了一种在有效离子温度> 20 keV时产生致密等离子体的方法,该方法足以诱发可测量的带电粒子核反应。我们的方法使用超强激光来驱动微米级的封装纳米泡沫目标。在强烈的激光相互作用中产生的高能电子穿过泡沫,从而引起泡沫离子的快速膨胀。这导致产生热的,接近固体的等离子体。我们介绍实现这些条件所需的激光和目标条件,并使用三维粒子模拟来说明系统性能,概述潜在的应用并计算D(d,n)和 12中的预期核反应速率采用CD或CH气凝胶泡沫的C(p,γ)系统。

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