Physics Department, Faculty of Science, Cairo University, 12613 Giza, Egypt.
Nanoscale. 2013 May 7;5(9):3941-7. doi: 10.1039/c3nr00633f. Epub 2013 Mar 27.
Magnetic properties of cylindrical Ni80Fe20 nanowires with modulated diameters are investigated theoretically as a function of their geometrical parameters and compared with those produced inside the pores of anodic alumina membranes by pulsed electrodeposition. We observe that the Ni80Fe20 nanowires with modulated diameters reverse their magnetization via the nucleation and propagation of a vortex domain wall. The system begins generating vortex domains in the nanowire ends and in the transition region between the two segments to minimize magnetostatic energy generated by surfaces perpendicular to the initial magnetization of the sample. Besides, we observed an increase of the coercivity for the sample with equal volumes in relation to the sample with equal lengths. Finally, the interaction field is stronger in the case of constant volume segments. These structures could be used to control the motions of magnetic domain walls. In this way, these nanowires with modulated diameters can be an alternative to store information or even perform logic functions.
我们理论研究了具有调制直径的圆柱形 Ni80Fe20 纳米线的磁性能,并将其与通过脉冲电镀在阳极氧化铝膜孔内生成的纳米线进行了比较。我们观察到,具有调制直径的 Ni80Fe20 纳米线通过形成和传播涡旋畴壁来反转其磁化。该系统通过在纳米线末端和两个段之间的过渡区域生成涡旋畴来最小化由垂直于样品初始磁化的表面产生的静磁能。此外,我们观察到对于具有相等体积的样品,矫顽力增加。最后,在等体积段的情况下,相互作用场更强。这些结构可用于控制磁畴壁的运动。通过这种方式,这些具有调制直径的纳米线可以替代存储信息甚至执行逻辑功能。