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Current-driven dynamics of skyrmions stabilized in MnSi nanowires revealed by topological Hall effect

机译:拓扑霍尔效应揭示了MnSi纳米线中稳定的天体离子的电流驱动动力学

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Skyrmions hold promise for next-generation magnetic storage as their nanoscale dimensions may enable high information storage density and their low threshold for current-driven motion may enable ultra-low energy consumption. Skyrmion-hosting nanowires not only serve as a natural platform for magnetic racetrack memory devices but also stabilize skyrmions. Here we use the topological Hall effect (THE) to study phase stability and current-driven dynamics of skyrmions in MnSi nanowires. THE is observed in an extended magnetic field-temperature window (15-30 K), suggesting stabilization of skyrmions in nanowires compared with the bulk. Furthermore, we show in nanowires that under the high current density of 10(8)-10(9)Am(-2), the THE decreases with increasing current densities, which demonstrates the current-driven motion of skyrmions generating the emergent electric field in the extended skyrmion phase region. These results open up the exploration of skyrmions in nanowires for fundamental physics and magnetic storage technologies.
机译:Skyrmion具有下一代磁存储的前景,因为它们的纳米级尺寸可以实现高信息存储密度,而其电流驱动运动的低阈值则可以实现超低能耗。承载Skyrmion的纳米线不仅可以用作磁性赛道存储设备的天然平台,还可以稳定Skyrmion。在这里,我们使用拓扑霍尔效应(THE)来研究MnSi纳米线中相称离子的相稳定性和电流驱动的动力学。在扩展的磁场温度窗口(15-30 K)中观察到THE,表明与大分子相比,纳米线中的天空离子稳定。此外,我们在纳米线中显示出,在10(8)-10(9)Am(-2)的高电流密度下,THE随着电流密度的增加而减小,这证明了由天体离子产生的电流驱动电流产生运动在扩大的天敌阶段区域。这些结果打开了对纳米线中天体离子的探索,以用于基本物理和磁存储技术。

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