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室温下各向异性单轴各向异性 kagome 磁体中自发磁 skyrmion 泡的观察。

Observation of Various and Spontaneous Magnetic Skyrmionic Bubbles at Room Temperature in a Frustrated Kagome Magnet with Uniaxial Magnetic Anisotropy.

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, China.

Shenyang Materials Science National Laboratory, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang, 110016, China.

出版信息

Adv Mater. 2017 Aug;29(29). doi: 10.1002/adma.201701144. Epub 2017 Jun 7.

Abstract

The quest for materials hosting topologically protected skyrmionic spin textures continues to be fueled by the promise of novel devices. Although many materials have demonstrated the existence of such spin textures, major challenges remain to be addressed before devices based on magnetic skyrmions can be realized. For example, being able to create and manipulate skyrmionic spin textures at room temperature is of great importance for further technological applications because they can adapt to various external stimuli acting as information carriers in spintronic devices. Here, the first observation of skyrmionic magnetic bubbles with variable topological spin textures formed at room temperature in a frustrated kagome Fe Sn magnet with uniaxial magnetic anisotropy is reported. The magnetization dynamics are investigated using in situ Lorentz transmission electron microscopy, revealing that the transformation between different magnetic bubbles and domains is via the motion of Bloch lines driven by an applied external magnetic field. These results demonstrate that Fe Sn facilitates a unique magnetic control of topological spin textures at room temperature, making it a promising candidate for further skyrmion-based spintronic devices.

摘要

追求具有拓扑保护的斯格明子自旋结构的材料,继续受到新型器件的推动。尽管许多材料已经证明了这种自旋结构的存在,但在基于磁斯格明子的器件能够实现之前,仍然存在重大挑战需要解决。例如,能够在室温下创建和操纵斯格明子自旋结构对于进一步的技术应用非常重要,因为它们可以作为自旋电子器件中的信息载体,适应各种外部刺激。在这里,首次在具有单轴各向异性的 frustrated kagome Fe Sn 磁体中,在室温下观察到具有可变拓扑自旋结构的斯格明子磁性气泡的形成。利用原位洛伦兹透射电子显微镜研究了磁化动力学,揭示了不同磁性气泡和畴之间的转变是通过施加外磁场驱动的 Bloch 线运动来实现的。这些结果表明,Fe Sn 有利于在室温下对拓扑自旋结构进行独特的磁性控制,使其成为进一步基于斯格明子的自旋电子器件的有前途的候选材料。

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