论文标题
稳定和应用不对称的néel天空在混合纳米结构中
Stabilization and application of asymmetric Néel skyrmions in hybrid nanostructures
论文作者
论文摘要
信息增加的量迫使信息存储和处理技术的持续改进,进一步的设备小型化以及它们的效率提高。磁空,拓扑准颗粒和最小的稳定磁纹理具有吸引人的特性,并且具有数据存储应用的潜力。具有不同磁化方向元素的混合纳米结构可以为开发基于天际的Spintronic和Magnonic设备提供其他优势。我们表明,位于铁磁条带上的纳米型中的Néel型Skyrmion会产生一个独特而引人注目的平台,用于探索磁化纹理之间的相互耦合。天际象征在条纹上引起烙印,而这反过来又不对称地挤压了点中的天空,增加了它们的大小和Skyrmion稳定性的DMI值,并引入了Skyrmion Bi-Stemation。最后,我们提出了一种基于提议的混合系统沿赛马场的天际沿赛道的不受约束运输的概念验证技术。我们的结果证明了一种混合结构,该结构有望在镁和旋转中应用。
Increasing amounts of information force the continuous improvement of information storage and processing technologies, further device miniaturization, and their efficiency increase. Magnetic skyrmions, topological quasiparticles, and the smallest stable magnetic textures possess intriguing properties and potential for data storage applications. Hybrid nanostructures with elements of different magnetization orientations can offer additional advantages for developing skyrmion-based spintronic and magnonic devices. We show that an Néel-type skyrmion confined within a nanodot placed on top of a ferromagnetic stripe produces a unique and compelling platform for exploring mutual coupling between magnetization textures. The skyrmion induces an imprint upon the stripe, which, in turn, asymmetrically squeezes the skyrmion in the dot, increasing their size and the range of skyrmion stability for small values of DMI, as well as introducing skyrmion bi-stability. At the end, we present a proof-of-concept technique for unconstrained transport of a skyrmion along a racetrack based on proposed hybrid systems. Our results demonstrate a hybrid structure that is promising for applications in magnonics and spintronics.