论文标题

Sub-nm图的过渡速率揭示了Skyrmion崩溃的机理

Mechanisms of skyrmion collapse revealed by sub-nm maps of the transition rate

论文作者

Muckel, Florian, von Malottki, Stephan, Holl, Christian, Pestka, Benjamin, Pratzer, Marco, Bessarab, Pavel F., Heinze, Stefan, Morgenstern, Markus

论文摘要

磁性天空是新记忆,逻辑和神经形态计算的关键候选者。基本属性是它们由稳固的整数绕组编号所描述的旋转自旋纹理引起的拓扑保护。但是,在原子晶格上的实现留下了一个漏洞,用于通过单个旋转的一致旋转来切换绕组数。因此,了解明显的显微镜是增强天空稳定性的关键。在这里,我们使用自旋极化扫描隧道显微镜通过单个热电子探测Skyrmion歼灭,并在纳米尺度上获得过渡速率的地图。通过施加平面磁场,我们最多将倒塌速率调整为四个数量级。与基于第一原理的原子旋转模拟相比,实验表明,平面内磁场的径向对称塌陷,并过渡到有限的平面内场的最近预测的嵌合体塌陷。我们的工作开放了设计Skyrmion开关标准和改进的天空稳定性的路线。

Magnetic skyrmions are key candidates for novel memory, logic, and neuromorphic computing. An essential property is their topological protection caused by the whirling spin texture as described by a robust integer winding number. However, the realization on an atomic lattice leaves a loophole for switching the winding number via concerted rotation of individual spins. Hence, understanding the unwinding microscopically is key to enhance skyrmion stability. Here, we use spin polarized scanning tunneling microscopy to probe skyrmion annihilation by individual hot electrons and obtain maps of the transition rate on the nanometer scale. By applying an in-plane magnetic field, we tune the collapse rate by up to four orders of magnitude. In comparison with first-principles based atomistic spin simulations, the experiments demonstrate a radial symmetric collapse at zero in-plane magnetic field and a transition to the recently predicted chimera collapse at finite in-plane field. Our work opens the route to design criteria for skyrmion switches and improved skyrmion stability.

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