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Stabilization of weak ferromagnetism by strong magnetic response to epitaxial strain in multiferroic BiFeO3

机译:在多铁性BiFeO3中通过外延应变产生的强磁响应来稳定弱铁磁性

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摘要

Multiferroic BiFeO3 exhibits excellent magnetoelectric coupling critical for magnetic information processing with minimal power consumption. However, the degenerate nature of the easy spin axis in the (111) plane presents roadblocks for real world applications. Here, we explore the stabilization and switchability of the weak ferromagnetic moments under applied epitaxial strain using a combination of first-principles calculations and group-theoretic analyses. We demonstrate that the antiferromagnetic moment vector can be stabilized along unique crystallographic directions ([110] and [–110]) under compressive and tensile strains. A direct coupling between the anisotropic antiferrodistortive rotations and the Dzyaloshinskii-Moria interactions drives the stabilization of the weak ferromagnetism. Furthermore, energetically competing C- and G-type magnetic orderings are observed at high compressive strains, suggesting that it may be possible to switch the weak ferromagnetism “on” and “off” under the application of strain. These findings emphasize the importance of strain and antiferrodistortive rotations as routes to enhancing induced weak ferromagnetism in multiferroic oxides.
机译:多铁性BiFeO3具有极佳的磁电耦合性能,对磁信息处理至关重要,而且功耗极低。但是,(111)平面中易旋转轴的简并性质为实际应用提供了障碍。在这里,我们结合第一原理计算和群理论分析,探索了在外延应变作用下的弱铁磁矩的稳定性和可切换性。我们证明,在压缩和拉伸应变下,反铁磁矩矢量可以沿唯一的晶体学方向([110]和[–110])稳定。各向异性反铁畸变旋转和Dzyaloshinskii-Moria相互作用之间的直接耦合驱动了弱铁磁性的稳定。此外,在高压缩应变下观察到能量竞争的C型和G型磁排序,这表明在施加应变的情况下可以将弱铁磁性“打开”和“关闭”。这些发现强调了应变和反铁扭曲旋转作为增强多铁氧化物中感应弱铁磁性的途径的重要性。

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