论文标题

范德华铁磁铁中垂直磁各向异性的应变可调性VI3

Strain tunability of perpendicular magnetic anisotropy in van der Waals ferromagnets VI3

论文作者

Zhang, Xi, Wang, Le, Su, Huimin, Xia, Xiuquan, Liu, Cai, Lin, Junhao, Huang, Mingyuan, Cheng, Yingchun, Mei, Jia-Wei, Dai, Jun-Feng

论文摘要

具有较高胁迫性的分层铁磁体在电子电路(例如数据存储)中具有特殊应用。因此,寻找新的硬铁磁铁并有效地调整或增强了固定性是当今分层磁铁中最热门的主题。在这里,我们报告了使用磁性圆形二科和测量值报告范德华(VDW)铁磁体VI3中垂直磁各向异性的应变可调节性。对于未训练的薄片,M-H曲线显示出具有垂直磁各向异性的矩形磁滞回路,并且具有较大的固定性(在10 K时高达1.775 t)。此外,在2.9%的平面内拉伸应变下,可矫正力可以提高到10 K时最大2.6 t。我们的DFT计算表明,施加了平式拉伸应变后,磁各向异性能量(MAE)可以大大增加,这有助于增强VI3薄片中的矫正性。同时,具有相似晶体结构的CRI3的固定性上的应变可调节性受到限制。主要原因是与Cr3+中的Vi6八面体中V3+中的强旋轨道耦合。 VI3剥离中胁迫性的应变可调节性突出了其将其整合到VDW异质结构中的潜力,将来铺平了通往纳米级的自旋设备和应用的道路。

Layered ferromagnets with high coercivity have special applications in nanoscale memory elements in electronic circuits, such as data storage. Therefore, searching for new hard ferromagnets and effectively tuning or enhancing the coercivity are the hottest topics in layered magnets today. Here, we report a strain tunability of perpendicular magnetic anisotropy in van der Waals (vdW) ferromagnets VI3 using magnetic circular dichroism measurements. For an unstrained flake, the M-H curve shows a rectangular-shaped hysteresis loop with perpendicular magnetic anisotropy and a large coercivity (up to 1.775 T at 10 K). Furthermore, the coercivity can be enhanced to a maximum of 2.6 T at 10 K under a 2.9% in-plane tensile strain. Our DFT calculations show that the magnetic anisotropy energy (MAE) can be dramatically increased after applying an in-plain tensile strain, which contributes to the enhancement of coercivity in the VI3 flake. Meanwhile, the strain tunability on the coercivity of CrI3, with a similar crystal structure, is limited. The main reason is the strong spin-orbital coupling in V3+ in VI6 octahedra in comparison with that in Cr3+. The strain tunability of coercivity in VI3 flakes highlights its potential for integration into vdW heterostructures, paving the way toward nanoscale spintronic devices and applications in the future.

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