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超快金属多层膜中由超扩散自旋电流驱动的磁化增强。

Ultrafast magnetization enhancement in metallic multilayers driven by superdiffusive spin current.

机构信息

Peter Grünberg Institut PGI-6 & JARA-FIT, Research Centre Jülich, 52425 Jülich, Germany.

出版信息

Nat Commun. 2012;3:1037. doi: 10.1038/ncomms2029.

Abstract

Uncovering the physical mechanisms that govern ultrafast charge and spin dynamics is crucial for understanding correlated matter as well as the fundamental limits of ultrafast spin-based electronics. Spin dynamics in magnetic materials can be driven by ultrashort light pulses, resulting in a transient drop in magnetization within a few hundred femtoseconds. However, a full understanding of femtosecond spin dynamics remains elusive. Here we spatially separate the spin dynamics using Ni/Ru/Fe magnetic trilayers, where the Ni and Fe layers can be ferro- or antiferromagnetically coupled. By exciting the layers with a laser pulse and probing the magnetization response simultaneously but separately in Ni and Fe, we surprisingly find that optically induced demagnetization of the Ni layer transiently enhances the magnetization of the Fe layer when the two layer magnetizations are initially aligned parallel. Our observations are explained by a laser-generated superdiffusive spin current between the layers.

摘要

揭示超快电荷和自旋动力学的物理机制对于理解关联物质以及超快基于自旋的电子学的基本限制至关重要。磁性材料中的自旋动力学可以通过超短光脉冲驱动,导致在几百飞秒内磁化强度瞬态下降。然而,对飞秒自旋动力学的全面理解仍然难以捉摸。在这里,我们使用 Ni/Ru/Fe 磁性三层膜来空间分离自旋动力学,其中 Ni 和 Fe 层可以铁磁或反铁磁耦合。通过用激光脉冲激发层,并同时但分别在 Ni 和 Fe 中探测磁化响应,我们令人惊讶地发现,当两个层磁化初始平行对齐时,光诱导的 Ni 层去磁会瞬态增强 Fe 层的磁化。我们的观察结果可以通过层间激光产生的超扩散自旋电流来解释。

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