Gawronski P, Merazzo K J, Chubykalo-Fesenko O, del Real R P, Vázquez M
Faculty of Physics and Applied Computer Science, AGH University of Science and Technology, al. Mickiewicza 30, PL-30059 Cracow, Poland.
Nanotechnology. 2014 Nov 28;25(47):475703. doi: 10.1088/0957-4484/25/47/475703. Epub 2014 Nov 7.
Magnetic hysteresis processes of hexagonal arrays of permalloy antidots have been studied by means of micromagnetic simulations as a function of geometrical parameters. The ideal system shows a maximum of the coercive field as a function of the antidot diameter. The simulated magnetic behavior has been compared with experimental values for antidot arrays of permalloy prepared from alumina templates with thicknesses between 2 and 60 nm, showing a monotonic increase of the coercive field as a function of the antidot diameter. We show that the introduction into simulations of the combination of variable antidot diameters from bottom to top due to the fabrication process and, more importantly, large geometrical domains, which break the sample symmetry, solves the discrepancy between the simulations and the experiment.
通过微磁模拟研究了坡莫合金反点六边形阵列的磁滞过程,并将其作为几何参数的函数进行分析。理想系统显示矫顽场随反点直径的变化存在最大值。将模拟的磁行为与由厚度在2至60纳米之间的氧化铝模板制备的坡莫合金反点阵列的实验值进行了比较,结果表明矫顽场随反点直径呈单调增加。我们表明,在模拟中引入由于制造过程导致的从底部到顶部可变反点直径的组合,更重要的是引入破坏样品对称性的大几何畴,解决了模拟与实验之间的差异。