论文标题

通过交替的dzyaloshinskii-moriya互动稳定手性自旋结构

Stabilizing chiral spin-structures via an alternating Dzyaloshinskii-Moriya interaction

论文作者

Lucassen, Juriaan, Meijer, Mariëlle J., de Jong, Mark C. H., Duine, Rembert A., Swagten, Henk J. M., Koopmans, Bert, Lavrijsen, Reinoud

论文摘要

薄膜中手性磁性自旋结构的稳定通常归因于界面的Dzyaloshinskii-Moriya相互作用(DMI)。然而,据报道,据报道,DMI诱导的手性可能会受到偶性相互作用的影响。这些偶极场倾向于形成néel盖,这需要形成膜顶部的顺时针手性,而底部则是逆时针手性。在这里,我们表明,工程DMI的工程会改变整个薄膜厚度的符号,以及形成Néel帽的趋势,可增强手性自旋结构的稳定性。 Skyrmions的微磁模拟表明,这可以通过至少\ si {0.6} {MJ.M^{ - 2}}来增加典型[PT/CO/IR]多层系统中的有效DMI。这些收益与使用添加剂DMI实现的目标相当,但由于我们不限于精选的材料组合,因此更灵活。我们还提出了实验结果:通过测量平衡结构域的宽度,我们可以量化[PT/CO/IR]多层系统中通常用于Skyrmion稳定的有效DMI。在引入交替的DMI后,我们证明了与我们的模拟一致的有效DMI的变化。我们的结果为增强不依赖手性相互作用的手性自旋结构的稳定性提供了途径。

The stabilization of chiral magnetic spin-structures in thin films is often attributed to the interfacial Dzyaloshinskii-Moriya interaction (DMI). Very recently, however, it has been reported that the chirality induced by the DMI can be affected by dipolar interactions. These dipolar fields tend to form Néel caps, which entails the formation of a clockwise chirality at the top of the film and a counterclockwise chirality at the bottom. Here, we show that engineering an alternating DMI that changes sign across the film thickness, together with the tendency to form Néel caps, leads to an enhanced stability of chiral spin-structures. Micromagnetic simulations for skyrmions demonstrate that this can increase the effective DMI in a prototypical [Pt/Co/Ir] multilayer system by at least \SI{0.6}{mJ.m^{-2}}. These gains are comparable to what has been achieved using additive DMI, but more flexible as we are not limited to a select set of material combinations. We also present experimental results: by measuring equilibrium domain widths we quantify the effective DMI in [Pt/Co/Ir] multilayer systems typically used for skyrmion stabilization. Upon introducing an alternating DMI we demonstrate changes in the effective DMI that agree with our simulations. Our results provide a route towards enhancing the stability of chiral spin-structures that does not rely on enlarging the chiral interactions.

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