论文标题
超快X射线诱导磁化动力学的建模在磁性多层系统中
Modeling of ultrafast X-ray induced magnetization dynamics in magnetic multilayer systems
论文作者
论文摘要
在这项工作中,我们报告了通过我们最近开发的仿真工具获得的建模结果,从而使X射线照射的铁磁材料中的电子过程能够对纳米过程进行描述。使用此工具,我们研究了CO/PT多层系统的响应,该系统被CO(光子能量$ \ sim $ 60 eV)的超快极端紫外线脉冲照射。先前使用磁性小角度X射线散射技术在Fermi自由电子激光器设施上进行了实验研究。我们的模拟表明,由于在实验数据中观察到的趋势,由于电子激发,松弛和铂层中的磁性散射信号在飞秒时尺度上降低。在低于结构损伤阈值的X射线诱导的X射线诱导的消除电磁的主要作用的确认是迈向定量控制和操纵X射线诱导磁性磁过程的一步。
In this work, we report on modelling results obtained with our recently developed simulation tool enabling nanoscopic description of electronic processes in X-ray irradiated ferromagnetic materials. With this tool, we have studied the response of Co/Pt multilayer system irradiated by an ultrafast extreme ultraviolet pulse at the M-edge of Co (photon energy $\sim$ 60 eV). It was previously investigated experimentally at the FERMI free-electron-laser facility, using the magnetic small-angle X-ray scattering technique. Our simulations show that the magnetic scattering signal from cobalt decreases on femtosecond timescales due to electronic excitation, relaxation and transport processes both in the cobalt and in the platinum layers, following the trend observed in the experimental data. The confirmation of the predominant role of electronic processes for X-ray induced demagnetization in the regime below the structural damage threshold is a step towards quantitative control and manipulation of X-ray induced magnetic processes on femtosecond timescales.