E Chunsheng, Rantschler James O, Khizroev Sakhrat, Litvinov Dmitri
J Appl Phys. 2008 Jun 1;103(11):113910-1139105. doi: 10.1063/1.2938842. Epub 2008 Jun 10.
Domain wall dynamics in magnetic nanodots is critical to the understanding of the magnetization reversal mechanisms in bit-patterned arrays, the issues of writeablility, data rate maximization, and bit stability. In this work, micromagnetic simulations were carried out to investigate the dynamics of domain walls in disk-shaped nanostructures with large built-in perpendicular anisotropy. Due to the strong demagnetizing effect, the domain wall motion falls into the supercritical regime. A 90 degrees phase shift of the wall velocity is developed due to the finite thicknesses. The mean value of the wall velocity increases as the domain wall propagates away from the center. This induced asymmetry causes the frequency of the wall oscillations to be halved. At large diameters, the wall acceleration deceases and the periodicity is lost. The in-plane magnetization configuration shows that multiple spin wave modes are present. The absence of the coherency in the magnetization orientations causes phase canceling. The out-of-phase motion of neighboring segments reduces the wall acceleration.
磁性纳米点中的畴壁动力学对于理解位图案化阵列中的磁化反转机制、可写性问题、数据速率最大化和位稳定性至关重要。在这项工作中,进行了微磁模拟以研究具有大的内禀垂直各向异性的盘状纳米结构中畴壁的动力学。由于强退磁效应,畴壁运动进入超临界状态。由于有限厚度,壁速度出现90度的相移。壁速度的平均值随着畴壁远离中心传播而增加。这种诱导的不对称性导致壁振荡频率减半。在大直径时,壁加速度减小且周期性消失。面内磁化配置表明存在多个自旋波模式。磁化方向缺乏相干性导致相位抵消。相邻段的异相运动降低了壁加速度。