论文标题

在Fe-Cu-ni三层中,对超快充电和自旋动力学的同时两色快照视图

Simultaneous two-color snapshot view on ultrafast charge and spin dynamics in a Fe-Cu-Ni tri-layer

论文作者

Rösner, Benedikt, Vodungbo, Boris, Chardonnet, Valentin, Döring, Florian, Guzenko, Vitaliy A., Hennes, Marcel, Kleibert, Armin, Lebugle, Maxime, Lüning, Jan, Mahne, Nicola, Merhe, Aladine, Naumenko, Denys, Nikolov, Ivaylo P., Lopez-Quintas, Ignacio, Pedersoli, Emanuele, Ribič, Primož R., Savchenko, Tatiana, Watts, Benjamin, Zangrando, Marco, Capotondi, Flavio, David, Christian, Jal, Emmanuelle

论文摘要

飞秒时间尺度上的超快现象通常通过泵探针实验检查。这意味着多次测量值,其中正在研究的样品用短的光脉冲泵送,然后在各个时间延迟时用第二个脉冲探测以遵循其动力学。最近,在时间结构域中将极端紫外线(XUV)脉冲的原理启用了单个脉冲中系统的动力学。但是,在比较复杂系统中的动力学时,在不同吸收边缘处的单独泵探针实验仍然缺乏统一的时间。在这里,我们报告了使用专用的光学元件以及Fermi Xuv自由电子激光器的两种彩色发射的实验,以同时在两个不同的吸收边缘的复合材料中遵循电荷和自旋动力学。由铁磁Fe和Ni层组成的样品由Cu层隔开,由红外激光泵送,并由两种颜色的XUV脉冲进行探测,其光子能量调谐到这两种过渡金属的M边缘。实验几何形状本质地避免了两个元素之间的任何时间不确定性,并且明确地揭示了相对于Fe和Ni的电子激发,磁反应的延迟约为100 fs。该延迟表明,在消极过程中,电子和自旋度自由度被脱钩。这些观察结果强调了对多组分材料中电荷和自旋的时间响应的同时研究的重要性。在更一般的情况下,可以将实验方法扩展到连续的能量范围,并有望在XUV和软X射线方案中发展无抖动的瞬时吸收光谱。

Ultrafast phenomena on a femtosecond timescale are commonly examined by pump-probe experiments. This implies multiple measurements where the sample under investigation is pumped with a short light pulse and then probed with a second pulse at various time delays to follow its dynamics. Recently, the principle of streaking extreme ultraviolet (XUV) pulses in the temporal domain has enabled recording the dynamics of a system within a single pulse. However, separate pump-probe experiments at different absorption edges still lack a unified timing, when comparing the dynamics in complex systems. Here we report on an experiment using a dedicated optical element and the two-color emission of the FERMI XUV free-electron laser to follow the charge and spin dynamics in composite materials at two distinct absorption edges, simultaneously. The sample, consisting of ferromagnetic Fe and Ni layers, separated by a Cu layer, is pumped by an infrared laser and probed by a two-color XUV pulse with photon energies tuned to the M edges of these two transition metals. The experimental geometry intrinsically avoids any timing uncertainty between the two elements and unambiguously reveals an approximately 100 fs delay of the magnetic response with respect to the electronic excitation for both Fe and Ni. This delay shows that the electronic and spin degrees of freedom are decoupled during the demagnetization process. These observations underline the importance of simultaneous investigation of the temporal response of both charge and spin in multi-component materials. In a more general scenario, the experimental approach can be extended to continuous energy ranges, promising the development of jitter-free transient absorption spectroscopy in the XUV and soft X-ray regimes.

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