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Dynamics of bulk electron heating and ionization in solid density plasmas driven by ultra-short relativistic laser pulses

机译:超短相对论激光脉冲驱动的固体密度等离子体中体电子加热和电离的动力学

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摘要

The dynamics of bulk heating and ionization is investigated both in simulations and theory, which determines the crucial plasma parameters such as plasma temperature and density in ultra-short relativistic laser-solid target interactions. During laser-plasma interactions, the solid density plasma absorbs a fraction of laser energy and converts it into kinetic energy of electrons. A portion of the electrons with relativistic kinetic energy goes through the solid density plasma and transfers energy into the bulk electrons, which results in bulk electron heating. The bulk electron heating is finally translated into the processes of bulk collisional ionization inside the solid target. A simple model based on the Ohmic heating mechanism indicates that the local and temporal profile of bulk return current is essential to determine the temporal evolution of bulk electron temperature. A series of particle-in-cell simulations showing the local heating model is robust in the cases of target with a preplasma and without a preplasma. Predicting the bulk electron heating is then benefit for understanding the collisional ionization dynamics inside the solid targets. The connection of the heating and ionization inside the solid target is further studied using Thomas-Fermi model. Published by AIP Publishing.
机译:通过模拟和理论研究了本体加热和电离的动力学,它确定了超短相对论激光-固体目标相互作用中的关键等离子体参数,例如等离子体温度和密度。在激光等离子体相互作用中,固体密度等离子体吸收一部分激光能量,并将其转换为电子的动能。具有相对论动能的一部分电子穿过固体密度等离子体,并将能量转移到体电子中,这导致体电子加热。最终,体电子加热转化为固体靶内部的体碰撞电离过程。基于欧姆加热机制的简单模型表明,大体积返回电流的局部和时间分布对于确定大体积电子温度的时间演化至关重要。一系列的细胞内粒子模拟显示了局部加热模型,对于带有前质浆和没有前质浆的靶来说,该模型是可靠的。然后,预测体电子加热将有助于理解固体靶内部的碰撞电离动力学。使用Thomas-Fermi模型进一步研究了固体靶内部的加热和电离的关系。由AIP Publishing发布。

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