论文标题

在极端紫外光谱范围内通过元素特异性测量探测的COFEB/PT双层中诱导和内在磁矩的超快行为

Ultrafast behavior of induced and intrinsic magnetic moments in CoFeB/Pt bilayers probed by element-specific measurements in the extreme ultraviolet spectral range

论文作者

Schmising, Clemens von Korff, Jana, Somnath, Yao, Kelvin, Hennecke, Martin, Scheid, Philippe, Sharma, Sangeeta, Viret, Michel, Chauleau, Jean-Yves, Schick, Daniel, Eisebitt, Stefan

论文摘要

从基本和应用研究的角度来看,含有铁磁3D过渡金属和4D/5D重金属的磁系统的超快和元素特异性响应既有意义又是一个基本的重金属。然而,迄今为止,关于固有的3D和诱导的4D/5D磁矩在飞秒激光激发时存在固有的3D与诱导的4D/5D磁矩之间的相互作用尚无共识。在这项工作中,我们通过使用高谐波辐射在极端紫外光谱范围内探测元素特异性的,核对价的核心频带转变来研究COFEB/PT双层的超快响应。我们表明,尽管有重叠的CO和Fe M $ _ {2,3} $,以及PT O $ $ _ {2,3} $ {2,3} $和N $ _7 $ _7 $ $ _7 $ resonances,但磁性散射模拟和能量和时间依赖的磁性不对称的分析允许准确地删除特定于元素的响应。与COFEB的固有力矩相比,我们发现诱导的PT矩矩的消除时间常数较小,并且较大的电磁振幅。我们的结果与重金属PT的高自旋轨道耦合以及最近提出的假设相吻合,即激光轨道耦合,即激光产生的,铁磁性膜内的激光产生的不相互分的亮元元人群导致PT诱导的磁性磁矩的过度减少。

The ultrafast and element-specific response of magnetic systems containing ferromagnetic 3d transition metals and 4d/5d heavy metals is of interest both from a fundamental as well as an applied research perspective. However, to date no consensus about the main microscopic processes describing the interplay between intrinsic 3d and induced 4d/5d magnetic moments upon femtosecond laser excitation exist. In this work, we study the ultrafast response of CoFeB/Pt bilayers by probing element-specific, core-to-valence band transitions in the extreme ultraviolet spectral range using high harmonic radiation. We show that the combination of magnetic scattering simulations and analysis of the energy- and time-dependent magnetic asymmetries allows to accurately disentangle the element-specific response in spite of overlapping Co and Fe M$_{2,3}$ as well as Pt O$_{2,3}$ and N$_7$ resonances. We find a considerably smaller demagnetization time constant as well as much larger demagnetization amplitudes of the induced moment of Pt compared to the intrinsic moment of CoFeB. Our results are in agreement with enhanced spin-flip probabilities due to the high spin-orbit coupling localized at the heavy metal Pt, as well as with the recently formulated hypothesis that a laser generated, incoherent magnon population within the ferromagnetic film leads to an overproportional reduction of the induced magnetic moment of Pt.

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