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Analyzing ultrafast laser-induced demagnetization in Co/Cu(001) via the depth sensitivity of the time-resolved transversal magneto-optical Kerr effect

机译:通过时间分辨横向磁光克尔效应的深度灵敏度分析Co / Cu(001)中超快激光诱导的去磁

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Ultrafast demagnetization after femtosecond laser excitation of thin ferromagnetic films has been shown to occur due to a combination of spin-flip scattering in the film and spin transport to a conducting substrate or adjacent layer. Here we demonstrate that the inherent depth sensitivity of the transversal magneto-optical Kerr effect can be employed to derive conclusions on a transient spatial profile in the magnetization in the direction normal to the sample surface. This magnetization profile is qualitatively different for demagnetization caused by spin flips and spin transport. With the help of simulations based on simple phenomenological models we show that spin transport to the substrate in Co/Cu(001) films dominates the demagnetization before the thermalization of the electronic system, i.e. at times < 100 fs, while after approximately 200 fs mainly spin-flip scattering determines the magnetization profile, in agreement with our earlier findings employing the longitudinal magneto-optical Kerr effect.
机译:飞秒激光激发铁磁性薄膜后,超快退磁已显示出,这是由于薄膜中的自旋翻转散射和自旋传输到导电基板或相邻层的结合所致。在这里,我们证明了横向磁光Kerr效应的固有深度灵敏度可用于得出关于垂直于样品表面方向的磁化过程中的瞬态空间轮廓的结论。对于由自旋翻转和自旋输运引起的退磁,该磁化曲线在质量上是不同的。借助于基于简单现象学模型的模拟,我们表明,在电子系统热化之前,即在时间<100 fs时,自旋输运到Co / Cu(001)薄膜中的衬底占主导地位,而在大约200 fs之后自旋翻转散射确定了磁化曲线,这与我们先前采用纵向磁光克尔效应的发现相一致。

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