论文标题
由激烈的X射线场驱动的致密等离子体的非热进化
Non-thermal evolution of dense plasmas driven by intense x-ray fields
论文作者
论文摘要
X射线自由电子激光器(XFELS)的出现使一系列新的实验研究通过激烈的X射线 - 摩擦相互作用来对物质的特性进行。这些相互作用的飞秒时间尺度导致产生瞬态高能密度等离子体,其中电子和离子都可能远离局部热力学平衡(LTE)。这种系统的预测建模仍然具有挑战性,这是因为电子和离子在其上有大量不同的时间尺度,并且由于描述所得高度离子化的等离子体所需的大量原子构型。在这里,我们探讨了使用CCFLE(一种非LTE,Fokker-Planck碰撞辐射代码)驱动到高能密度的系统的演变。我们使用CCFLE来研究由XFEL驱动的固密度等离子体的演化动力学,并探索血浆对局部热力学平衡的放松,该平衡在电荷状态分布,电子密度和温度方面对pemtsepsecond timescare的局部时间表。
The advent of x-ray free-electron lasers (XFELs) has enabled a range of new experimental investigations into the properties of matter driven to extreme conditions via intense x-ray-matter interactions. The femtosecond timescales of these interactions lead to the creation of transient high-energy-density plasmas, where both the electrons and the ions may be far from local thermodynamic equilibrium (LTE). Predictive modelling of such systems remains challenging because of the substantially different timescales on which electrons and ions thermalize, and because of the vast number of atomic configurations that are required to describe the resulting highly-ionized plasmas. Here we explore the evolution of systems driven to high energy densities using CCFLY, a non-LTE, Fokker-Planck collisional-radiative code. We use CCFLY to investigate the evolution dynamics of a solid-density plasma driven by an XFEL, and explore the relaxation of the plasma to local thermodynamic equilibrium on femtosecond timescales in terms of the charge state distribution, electron density, and temperature.