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基于反铁磁体异质结构的室温斯格明子。

Room-Temperature Skyrmions in an Antiferromagnet-Based Heterostructure.

机构信息

Department of Electrical Engineering, University of California , Los Angeles, California 90095, United States.

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

出版信息

Nano Lett. 2018 Feb 14;18(2):980-986. doi: 10.1021/acs.nanolett.7b04400. Epub 2018 Jan 22.

Abstract

Magnetic skyrmions as swirling spin textures with a nontrivial topology have potential applications as magnetic memory and storage devices. Since the initial discovery of skyrmions in non-centrosymmetric B20 materials, the recent effort has focused on exploring room-temperature skyrmions in heavy metal and ferromagnetic heterostructures, a material platform compatible with existing spintronic manufacturing technology. Here, we report the surprising observation that a room-temperature skyrmion phase can be stabilized in an entirely different class of systems based on antiferromagnetic (AFM) metal and ferromagnetic (FM) metal IrMn/CoFeB heterostructures. There are a number of distinct advantages of exploring skyrmions in such heterostructures including zero-field stabilization, tunable antiferromagnetic order, and sizable spin-orbit torque (SOT) for energy-efficient current manipulation. Through direct spatial imaging of individual skyrmions, quantitative evaluation of the interfacial Dzyaloshinskii-Moriya interaction, and demonstration of current-driven skyrmion motion, our findings firmly establish the AFM/FM heterostructures as a promising material platform for exploring skyrmion physics and device applications.

摘要

磁性 skyrmions 是一种具有非平凡拓扑结构的旋转自旋纹理,在磁记忆和存储设备中有潜在的应用。自非中心对称 B20 材料中首次发现 skyrmions 以来,最近的研究重点集中在探索重金属和铁磁异质结构中的室温 skyrmions,这是一种与现有自旋电子制造技术兼容的材料平台。在这里,我们报告了一个令人惊讶的观察结果,即在基于反铁磁(AFM)金属和铁磁(FM)金属 IrMn/CoFeB 异质结构的完全不同的一类系统中,可以稳定室温 skyrmion 相。在这种异质结构中探索 skyrmions 具有许多明显的优势,包括零场稳定、可调反铁磁有序和可观的自旋轨道扭矩(SOT),可实现节能的电流控制。通过对单个 skyrmions 的直接空间成像、对界面 Dzyaloshinskii-Moriya 相互作用的定量评估以及对电流驱动 skyrmion 运动的演示,我们的发现有力地确立了 AFM/FM 异质结构作为探索 skyrmion 物理和器件应用的有前途的材料平台。

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