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在应变的 Kagome 反铁磁体 MnSn 中,零场冷却交换偏置可达室温。

Zero-field-cooling exchange bias up to room temperature in the strained kagome antiferromagnet MnSn.

作者信息

Zhao Mingyue, Guo Wei, Wu Xian, Ma Li, Song Ping, Li Guoke, Zhen Congmian, Zhao Dewei, Hou Denglu

机构信息

Hebei Key Laboratory of Photophysics Research and Application, College of Physics, Hebei Normal University, Shijiazhuang, 050024, People's Republic of China.

State Key Laboratory of Metastable Materials Science & Technology and Key Laboratory for Microstructural Material Physics of Hebei Province, School of Science, Yanshan University, Qinhuangdao 066004, People's Republic of China.

出版信息

Mater Horiz. 2023 Oct 2;10(10):4597-4608. doi: 10.1039/d3mh00754e.

Abstract

Zero-field-cooling exchange bias (ZFC EB) has always been a research hotspot for researchers, because it can realize the movement of the magnetization hysteresis loop along the field axis without field cooling, which greatly expands the universality and convenience of the application of the exchange bias effect. Achieving ZFC EB at room temperature is an ongoing challenge. To this end, a design strategy from the sublattice level is proposed, and a wide temperature range ZFC EB up to room temperature with a vertical magnetization shift is observed in the strained kagome antiferromagnet MnSn. Magnetic analysis and first-principles calculations reveal that the ZFC EB arises from the strong exchange interaction between the non-coplanar antiferromagnetic Mn kagome sublattice occupying normal Mn sites and the collinear ferromagnetic Mn sublattice occupying Sn sites. This discovery is of great significance for the application of ZFC EB in antiferromagnetic spintronic devices.

摘要

零场冷却交换偏置(ZFC EB)一直是研究人员的研究热点,因为它可以在无场冷却的情况下实现磁化滞后回线沿场轴的移动,这极大地扩展了交换偏置效应应用的普遍性和便利性。在室温下实现ZFC EB是一项持续的挑战。为此,提出了一种从亚晶格层面的设计策略,并且在应变的 Kagome 反铁磁体 MnSn 中观察到了高达室温的宽温度范围且具有垂直磁化位移的 ZFC EB。磁性分析和第一性原理计算表明,ZFC EB源于占据正常 Mn 位点的非共面反铁磁 Mn Kagome 亚晶格与占据 Sn 位点的共线铁磁 Mn 亚晶格之间的强交换相互作用。这一发现对于ZFC EB在反铁磁自旋电子器件中的应用具有重要意义。

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