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室温下超薄膜金属铁磁体中磁 skyrmions 的观测及其电流驱动动力学。

Observation of room-temperature magnetic skyrmions and their current-driven dynamics in ultrathin metallic ferromagnets.

机构信息

Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

Institut für Physik, Johannes Gutenberg-Universität Mainz, 55099 Mainz, Germany.

出版信息

Nat Mater. 2016 May;15(5):501-6. doi: 10.1038/nmat4593. Epub 2016 Feb 29.

Abstract

Magnetic skyrmions are topologically protected spin textures that exhibit fascinating physical behaviours and large potential in highly energy-efficient spintronic device applications. The main obstacles so far are that skyrmions have been observed in only a few exotic materials and at low temperatures, and fast current-driven motion of individual skyrmions has not yet been achieved. Here, we report the observation of stable magnetic skyrmions at room temperature in ultrathin transition metal ferromagnets with magnetic transmission soft X-ray microscopy. We demonstrate the ability to generate stable skyrmion lattices and drive trains of individual skyrmions by short current pulses along a magnetic racetrack at speeds exceeding 100 m s(-1) as required for applications. Our findings provide experimental evidence of recent predictions and open the door to room-temperature skyrmion spintronics in robust thin-film heterostructures.

摘要

磁斯格明子是拓扑保护的自旋纹理,具有迷人的物理行为和在高能效的自旋电子器件应用中的巨大潜力。到目前为止的主要障碍是,斯格明子仅在少数奇特材料和低温下观察到,并且单个斯格明子的快速电流驱动运动尚未实现。在这里,我们通过磁性传输软 X 射线显微镜报告了在超薄过渡金属铁磁体中在室温下观察到稳定的磁斯格明子。我们证明了通过沿磁赛道施加短电流脉冲,在超过 100 m s(-1)的速度下产生稳定的斯格明子晶格和单个斯格明子列车的能力,这是应用所需要的。我们的发现为最近的预测提供了实验证据,并为在坚固的薄膜异质结构中实现室温斯格明子自旋电子学开辟了道路。

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