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首页> 外文期刊>Laser and Particle Beams >A numerical study of ponderomotive ion acceleration in a dense plasma driven by a circularly polarized high-intensity laser beam normally incident on thin foils
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A numerical study of ponderomotive ion acceleration in a dense plasma driven by a circularly polarized high-intensity laser beam normally incident on thin foils

机译:圆偏振高强度激光束驱动的致密等离子体中质子离子加速的数值研究

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摘要

We use an Eulerian Vlasov code to study the efficient ion acceleration in dense targets by the ponderomotive force of a high-intensity circularly polarized laser beam, normally incident on a dense plasma. The code solves the one-dimensional relativistic Vlasov-Maxwell equations for both electrons and ions. We follow in details the mechanism of formation and evolution of a double-layer structure, where electrons are pushed steadily in the forward direction by the ponderomotive force of the laser beam, trapping an ion population, while an induced space charge electric field pulls ions behind them, forming a double-layer structure supported by the strong ponderomotive pressure of the intense laser beam. We consider the case of a high-density deuterium plasma with n(cr) = 100, where n(cr) is the critical density. Three cases are studied, by varying the width of the dense target and the intensity of the laser beam (with the normalized vector potential or quiver momentum a(0) = 50 and a(0) = 100), to follow the physical processes involved in the ion acceleration and the final formation of a neutral plasma jet ejected from the back of the target. We follow the transition from a situation where the laser pulse radiation pressure is acting on the double layer in the target, to a situation where below a given thickness a fraction of the laser energy is transmitted through the target. The absence of noise in the Eulerian Vlasov code allows us to follow accurately the evolution of the phase-space structures of the distribution functions.
机译:我们使用欧拉弗拉索夫(Eulerian Vlasov)代码,通过高强度圆偏振激光束(通常入射在密集等离子体上)的质动力,研究密集目标中的有效离子加速。该代码解决了电子和离子的一维相对论Vlasov-Maxwell方程。我们详细研究了双层结构的形成和演化机理,在这种结构中,电子被激光束的磁势稳定地向前推进,俘获了离子,而感应的空间电荷电场将离子向后拉它们形成了由强激光束的强大动磁压力支撑的双层结构。我们考虑n / n(cr)= 100的高密度氘等离子体的情况,其中n(cr)是临界密度。通过改变密集目标的宽度和激光束的强度(归一化矢量势或颤动量a(0)= 50和a(0)= 100)来研究三种情况,以遵循所涉及的物理过程在离子加速过程中,最终形成了从靶标背面喷出的中性等离子体射流。我们遵循从激光脉冲辐射压力作用于目标中的双层的情况到以下情况的过渡:在给定厚度以下的情况下,一部分激光能量会通过目标传输。欧拉弗拉索夫代码中没有噪声,这使我们能够准确地跟踪分布函数的相空间结构的演变。

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