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Saturated ablation in metal hydrides and acceleration of protons and deuterons to keV energies with a soft-x-ray laser.

机译:用软X射线激光对金属氢化物进行饱和烧蚀,并使质子和氘核加速至keV能量。

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摘要

Studies of materials under extreme conditions have relevance to a broad area of research, including planetary physics, fusion research, materials science, and structural biology with x-ray lasers. We study such extreme conditions and experimentally probe the interaction between ultrashort soft x-ray pulses and solid targets (metals and their deuterides) at the FLASH free-electron laser where power densities exceeding 10(17) W/cm(2) were reached. Time-of-flight ion spectrometry and crater analysis were used to characterize the interaction. The results show the onset of saturation in the ablation process at power densities above 10(16) W/cm(2). This effect can be linked to a transiently induced x-ray transparency in the solid by the femtosecond x-ray pulse at high power densities. The measured kinetic energies of protons and deuterons ejected from the surface reach several keV and concur with predictions from plasma-expansion models. Simulations of the interactions were performed with a nonlocal thermodynamic equilibrium code with radiation transfer. These calculations return critical depths similar to the observed crater depths and capture the transient surface transparency at higher power densities.
机译:极端条件下的材料研究与广泛的研究领域相关,包括行星物理学,聚变研究,材料科学和X射线激光的结构生物学。我们研究了这种极端条件,并通过实验在功率密度超过10(17)W / cm(2)的FLASH自由电子激光器上探测了超短的软X射线脉冲与固体目标(金属及其氘代)之间的相互作用。飞行时间离子光谱和陨石坑分析用于表征相互作用。结果表明,在功率密度高于10(16)W / cm(2)的情况下,烧蚀过程开始出现饱和。该效应可以与飞秒X射线脉冲在高功率密度下与固体中的瞬态X射线透明性相关。从表面射出的质子和氘核的测量动能达到几个keV,并且与等离子膨胀模型的预测一致。用具有辐射传递的非局部热力学平衡代码进行相互作用的模拟。这些计算返回的临界深度与观察到的火山口深度相似,并在较高功率密度下捕获了瞬态表面透明性。

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