论文标题

ni $ m_ {2,3} $ - 边缘的时间分辨XUV吸收光谱和磁性圆形二科

Time-Resolved XUV absorption spectroscopy and magnetic circular dichroism at the Ni $M_{2,3}$-edges

论文作者

Hennes, Marcel, Rösner, Benedikt, Chardonnet, Valentin, Chiuzbaian, Gheorghe S., Delaunay, Renaud, Döring, Florian, Guzenko, Vitaliy A., Hehn, Michel, Jarrier, Romain, Kleibert, Armin, Lebugle, Maxime, Lüning, Jan, Merhe, Aladine, Naumenko, Denys, Nikolov, Ivaylo P., Lopez-Quintas, Ignacio, Pedersoli, Emanuele, Savchenko, Tatiana, Watts, Benjamin, Zangrando, Marco, David, Christian, Capotondi, Flavio, Vodungbo, Boris, Jal, Emmanuelle

论文摘要

超短光脉冲可以触发影响飞秒时间尺度上电子和旋转的磁性薄膜中的各种非平衡过程。为了同时探测自由度的电荷和磁性程度,我们开发了一种X射线条纹技术,其优点是提供无抖动的吸收横截面变化图片。在本文中,我们提出了一个基于这种方法的实验,我们使用ni $ m_ {2,3} $ - 边缘的五个光子探测能进行了执行。这使我们能够检索吸收和磁性圆形二科动物的时间迹线,从而产生了有关电子和旋转种群的瞬时修饰的详细信息。我们的发现表明,观察到的电荷和磁化动力学都取决于XUV探测波长,并且至少可以通过假设电子和磁性元素吸收共振的超快能量移动来定性地描述,如最近的工作。但是,我们的分析还暗示了更复杂的变化,强调了进一步的实验和理论分析的需求,以便对光学激发磁性薄膜中电子和自旋自由度的相互作用有透彻的了解。

Ultrashort optical pulses can trigger a variety of non-equilibrium processes in magnetic thin films affecting electrons and spins on femtosecond timescales. In order to probe the charge and magnetic degrees of freedom simultaneously, we developed an x-ray streaking technique that has the advantage of providing a jitter-free picture of absorption cross section changes. In this paper, we present an experiment based on this approach which we performed using five photon probing energies at the Ni $M_{2,3}$-edges. This allowed us to retrieve the absorption and magnetic circular dichroism time traces, yielding detailed information on transient modifications of electron and spin populations close to the Fermi level. Our findings suggest that the observed charge and magnetic dynamics both depend on the XUV probing wavelength, and can be described, at least qualitatively, by assuming ultrafast energy shifts of the electronic and magnetic elemental absorption resonances, as reported in recent work. However, our analysis also hints at more complex changes, highlighting the need for further experimental and theoretical analysis in order to gain a thorough understanding of the interplay of electronic and spin degrees of freedom in optically excited magnetic thin films.

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