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磁涡旋核内部自旋结构的直接观测。

Direct observation of internal spin structure of magnetic vortex cores.

作者信息

Wachowiak A, Wiebe J, Bode M, Pietzsch O, Morgenstern M, Wiesendanger R

机构信息

Institute of Applied Physics and Microstructure Research Center, University of Hamburg, Jungiusstr. 11, D-20355 Hamburg, Germany.

出版信息

Science. 2002 Oct 18;298(5593):577-80. doi: 10.1126/science.1075302.

Abstract

Thin film nanoscale elements with a curling magnetic structure (vortex) are a promising candidate for future nonvolatile data storage devices. Their properties are strongly influenced by the spin structure in the vortex core. We have used spin-polarized scanning tunneling microscopy on nanoscale iron islands to probe for the first time the internal spin structure of magnetic vortex cores. Using tips coated with a layer of antiferromagnetic chromium, we obtained images of the curling in-plane magnetization around and of the out-of-plane magnetization inside the core region. The experimental data are compared with micromagnetic simulations. The results confirm theoretical predictions that the size and the shape of the vortex core as well as its magnetic field dependence are governed by only two material parameters, the exchange stiffness and the saturation magnetization that determines the stray field energy.

摘要

具有卷曲磁结构(涡旋)的薄膜纳米级元件是未来非易失性数据存储设备的一个有前途的候选者。它们的特性受到涡旋核心中自旋结构的强烈影响。我们在纳米级铁岛上使用自旋极化扫描隧道显微镜首次探测了磁涡旋核心的内部自旋结构。通过使用涂有一层反铁磁铬的针尖,我们获得了核心区域周围平面内卷曲磁化和平面外磁化的图像。实验数据与微磁模拟进行了比较。结果证实了理论预测,即涡旋核心的尺寸、形状及其磁场依赖性仅由两个材料参数决定,即交换刚度和决定杂散场能量的饱和磁化强度。

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