论文标题
通过直接动态成像量化竞争磁状态和弯曲纳米线中的切换途径
Quantification of competing magnetic states and switching pathways in curved nanowires by direct dynamic imaging
论文作者
论文摘要
对于可行的应用,基于自旋设备,例如在域上,壁运动需要具有稳定的磁化状态和高度可重现的开关路径,将一个状态转换为另一种状态。系统中有多个稳定状态和切换途径的存在是设备操作的确定障碍,但是很难检测和理解罕见和随机事件。我们展示了一种基于时间分辨的扫描电子显微镜,通过极化分析来量化竞争磁状态和随机切换途径,并应用于曲面中的磁场和曲率对涡流域壁性手性的技术相关控制。尽管是泵探针技术,但我们的分析方案仍然可以解散不同发生的动态途径,甚至可以通过温度依赖于温度和几何形状的测量值确定从一个磁化切换途径到另一个途径的罕见事件。微磁模拟支持实验成像,以揭示导致途径变化的机制。结果共同解释了域壁手性控制的原点和细节,并量化了状态和切换途径的热激活变化的频率和相关能屏障。
For viable applications, spintronic devices based e.g. on domain wall motion need to be highly reliable with stable magnetization states and highly reproducible switching pathways transforming one state to another. The existence of multiple stable states and switching pathways in a system is a definitive barrier for device operation, yet rare and stochastic events are difficult to detect and understand. We demonstrate an approach to quantify competing magnetic states and stochastic switching pathways based on time-resolved scanning electron microscopy with polarization analysis, applied to the technologically relevant control of vortex domain wall chirality via field and curvature in curved wires. While being a pump-probe technique, our analysis scheme nonetheless allows for the disentanglement of different occurring dynamic pathways and we can even identify the rare events leading to changes from one magnetization switching pathway to another pathway via temperature- and geometry-dependent measurements. The experimental imaging is supported by micromagnetic simulations to reveal the mechanisms responsible for the change of the pathway. Together the results allow us to explain the origin and details of the domain wall chirality control and to quantify the frequency and the associated energy barriers of thermally activated changes of the states and switching pathways.