论文标题

通过原子堆叠3D/5D电子来调整磁性

Tailoring magnetic order via atomically stacking 3d/5d electrons

论文作者

Huang, Ke, Wu, Liang, Wang, Maoyu, Swain, Nyayabanta, Motapothula, M., Luo, Yongzheng, Han, Kun, Chen, Mingfeng, Ye, Chen, Yang, Allen Jian, Xu, Huan, Qi, Dong-chen, N'Diaye, Alpha T., Panagopoulos, Christos, Primetzhofer, Daniel, Shen, Lei, Sengupta, Pinaki, Ma, Jing, Feng, Zhenxing, Nan, Ce-Wen, Wang, X. Renshaw

论文摘要

为了实现高性能的自旋装置,需要调整磁性顺序(例如磁各向异性和拓扑自旋纹理)的能力。最近的一种策略是采用界面工程技术,例如引入自旋相关的界面耦合,以量身定制磁性顺序并实现新颖的磁性。我们选择了独特的极性非极性LAMNO3/SRIRO3超晶格,因为Mn(3D)/IR(5D)氧化物通过其3D和5D电子的纠缠表现出丰富的磁性行为和强旋轨道耦合。通过磁化和磁转运测量,我们发现随着超晶格周期的降低,磁序是界面占主导地位的。然后,我们能够通过引入额外的MN(3D)和IR(5D)接口,有效地改变了lamno3/sriRO3超矩形的各向异性磁倍率的磁化,铁磁易于轴的倾斜度以及对称性转变。使用深入的第一原理计算和数值模拟的进一步研究表明,这些磁性行为可以通过3D/5D电子相关性和Rashba旋转轨道耦合来理解。此处报告的结果证明了通过不同电子的原子堆叠进行同步工程磁性特性的新途径,这有助于将来的应用。

The ability to tune magnetic orders, such as magnetic anisotropy and topological spin texture, is desired in order to achieve high-performance spintronic devices. A recent strategy has been to employ interfacial engineering techniques, such as the introduction of spin-correlated interfacial coupling, to tailor magnetic orders and achieve novel magnetic properties. We chose a unique polar-nonpolar LaMnO3/SrIrO3 superlattice because Mn (3d)/Ir (5d) oxides exhibit rich magnetic behaviors and strong spin-orbit coupling through the entanglement of their 3d and 5d electrons. Through magnetization and magnetotransport measurements, we found that the magnetic order is interface-dominated as the superlattice period is decreased. We were able to then effectively modify the magnetization, tilt of the ferromagnetic easy axis, and symmetry transition of the anisotropic magnetoresistance of the LaMnO3/SrIrO3 superlattice by introducing additional Mn (3d) and Ir (5d) interfaces. Further investigations using in-depth first-principles calculations and numerical simulations revealed that these magnetic behaviors could be understood by the 3d/5d electron correlation and Rashba spin-orbit coupling. The results reported here demonstrate a new route to synchronously engineer magnetic properties through the atomic stacking of different electrons, contributing to future applications.

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