论文标题

具有超级磁曲的柔性铁磁纳米线

Flexible ferromagnetic nanowires with ultralow magnetostriction

论文作者

Muscas, Giuseppe, Jönsson, Petra E., Serrano, I. G., Vallin, Örjan, Kamalakar, M. Venkata

论文摘要

磁电和自旋传感器的集成为推进柔性和可穿戴技术的巨大潜力提供了巨大的潜力。磁性纳米线是用于构建此类设备的核心组件,因此重要的是要实现柔性磁性纳米线和发现磁弹性弹性的特性,不仅可以推动这种柔性传感应用,而且还可以为探索柔性磁质设备的新途径,并在减少的尺寸下发现不观察的磁性型。在这里,我们首次意识到柔性底物上的铁磁纳米线。通过广泛的磁光光学实验,探索了这种纳米线中的维拉里效应,与散装值相比,纳米线中的磁性磁通量降低了两阶。此外,与具有相似厚度和组成的薄膜相比,纳米线表现出持续弯曲半径,非常高的耐力和增强的弹性极限的弹性行为。我们通过微磁模拟确认了观察到的性能,并将观察结果归因于尺寸减小和高纳米结构间接效应。带有超大磁结的柔性磁性纳米线为稳定的表面可安装和可穿戴的Spintronic传感器提供了新的机会,为工程高级纳米融合设备提供了一种可靠的方式,并探索了混合异质结构中的新效果。

Integration of magneto-electric and spintronic sensors presents a massive potential for advancing flexible and wearable technology. Magnetic nanowires are core components for building such devices, and therefore it important to realize flexible magnetic nanowires and uncover magneto-elastic properties, which can propel not only such flexible sensing applications, but can also make new pathways for exploration of flexible magneto-plasmonic devices, and discovering unseen observations at reduced dimensions. Here, we realize ferromagnetic nanowires on flexible substrates for the first time. Through extensive magneto-optical Kerr experiments, exploring the Villari effect in such nanowires, we reveal a two-order of magnitude reduced magnetostrictive constant in nanowires, compared to bulk values. In addition, the nanowires exhibit a remarkably resilient behavior sustaining bending radii ~ 5 mm, very high endurance, and enhanced elastic limit compared to thin films of similar thickness and composition. We confirm the observed performance by micro-magnetic simulations and attribute the observations to the size reduction and high nanostructure-interfacial effects. The flexible magnetic nanowires with ultralow magnetostriction open up new opportunities for stable surface mountable and wearable spintronic sensors, enable a credible way for engineering advanced nanospintronic devices and exploring new effects in hybrid heterostructures.

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