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Measuring the atomic spin-flip scattering rate by x-ray emission spectroscopy

机译:通过X射线发射光谱法测量原子自旋翻转散射速率

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摘要

While extensive work has been dedicated to the measurement of the demagnetization time following an ultra-short laser pulse, experimental studies of its underlying microscopic mechanisms are still scarce. In transition metal ferromagnets, one of the main mechanism is the spin-flip of conduction electrons driven by electron-phonon scattering. Here, we present an original experimental method to monitor the electron-phonon mediated spin-flip scattering rate in nickel through the stringent atomic symmetry selection rules of x-ray emission spectroscopy. Increasing the phonon population leads to a waning of the 3d → 2p3/2 decay peak intensity, which reflects an increase of the angular momentum transfer scattering rate attributed to spin-flip. We find a spin relaxation time scale in the order of 50 fs in the 3d-band of nickel at room temperature, while consistantly, no such peak evolution is observed for the diamagnetic counterexample copper, using the same method.
机译:尽管已经进行了大量工作来测量超短激光脉冲后的消磁时间,但仍缺乏对其潜在微观机理的实验研究。在过渡金属铁磁体中,主要机理之一是由电子-声子散射驱动的导电电子的自旋翻转。在这里,我们提出了一种原始的实验方法,通过严格的X射线发射光谱原子对称选择规则来监测电子中声子介导的自旋翻转散射速率。声子总数的增加导致3d→2p3 / 2衰减峰强度的减弱,这反映了自旋翻转引起的角动量转移散射率的增加。我们在室温下在镍的3d谱带中发现了一个自旋弛豫时间尺度,约为50μfs,而一致地,使用相同的方法,反磁性反例铜没有观察到这样的峰演化。

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