论文标题

圆柱脉冲在圆柱调制的纳米线中引起的域壁传播和固定

Domain Wall Propagation and Pinning Induced by Current Pulses in Cylindrical Modulated Nanowires

论文作者

Bran, C., Fernandez-Roldan, J. A., Moreno, J. A., Rodríguez, A. Fraile, del Real, R. P., Asenjo, A., Saugar, E., Marqués-Marchán, J., Mohammed, H., Foerster, M., Aballe, L., Kosel, J., Vazquez, M., Chubykalo-Fesenko, O.

论文摘要

三维磁性纳米技术的未来发展需要通过当前脉冲控制域壁动力学。尽管在平面磁条(平面纳米线)中对此进行了广泛的研究,但圆柱几何形状中很少有报道,其中Bloch点域壁有望具有有趣的特性。在这里,我们报告了具有几何缺口的圆柱磁性Ni纳米线的研究。基于同步加速器X射线磁圆二色性(XMCD)与光发射电子显微镜(PEEM)相结合的实验性工作表明,较大的电流密度可诱导域壁成核​​,而较小的电流较小,而较小的电流则可以在电流方向上移动域壁。在没有固定中心的区域中,我们发现域壁速度约为1 km/s。还在Notch区域附近检测到沿电流的域壁运动。不仅在几何限制下,而且在它们之外也观察到了域壁的固定。热建模表明,较大的电流密度暂时将纳米线的温度提高到库里温度上方,从而导致系统冷却过程中域壁成核。具有自旋扭转效应的微磁性建模表明,对于中间电流密度,Bloch点域壁平行于手性,与oersted场繁殖与电流方向的抗平行。在其他情况下,可以从凹口弹跳和/或将其固定在其位置之外。因此,我们发现电流不仅负责域壁传播,而且由于奥斯特野外作用而成为固定的来源。

The future developments of three-dimensional magnetic nanotechnology require the control of domain wall dynamics by means of current pulses. While this has been extensively studied in planar magnetic strips (planar nanowires), few reports exist in cylindrical geometry, where Bloch point domain walls are expected to have intriguing properties. Here we report this investigation in cylindrical magnetic Ni nanowires with geometrical notches. Experimental work based on synchrotron X-ray magnetic circular dichroism (XMCD) combined with photoemission electron microscopy (PEEM) indicates that large current densities induce domain wall nucleation while smaller currents move domain walls preferably against the current direction. In the region where no pinning centers are present we found domain wall velocity of about 1 km/s. The domain wall motion along current was also detected in the vicinity of the notch region. Pinning of domain walls has been observed not only at geometrical constrictions but also outside of them. Thermal modelling indicates that large current densities temporarily raise the temperature in the nanowire above the Curie temperature leading to nucleation of domain walls during the system cooling. Micromagnetic modelling with spin-torque effect shows that for intermediate current densities Bloch point domain walls with chirality parallel to the Oersted field propagate antiparallel to the current direction. In other cases, domain walls can be bounced from the notches and/or get pinned outside their positions. We thus find that current is not only responsible for the domain wall propagation but is also a source of pinning due to the Oersted field action.

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