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Magnetic reversal in perpendicularly magnetized antidot arrays with intrinsic and extrinsic defects

机译:磁性逆转在具有内在和外在缺陷的垂直磁化的反向阵列中

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摘要

Defects can significantly affect performance of nanopatterned magnetic devices, therefore their influence on the material properties has to be understood well before the material is used in technological applications. However, this is experimentally challenging due to the inability of the control of defect characteristics in a reproducible manner. Here, we construct a micromagnetic model, which accounts for intrinsic and extrinsic defects associated with the polycrystalline nature of the material and with corrugated edges of nanostructures. The predictions of the model are corroborated by the measurements obtained for highly ordered arrays of circular Co/Pd antidots with perpendicular magnetic anisotropy. We found that magnetic properties, magnetic reversal and the evolution of the domain pattern are strongly determined by density of defects, heterogeneity of nanostructures, and edge corrugations. In particular, an increase in the Néel domain walls, as compared to Bloch walls, was observed with a increase of the antidot diameters, suggesting that a neck between two antidots can behave like a nanowire with a width determined by the array period and antidot size. Furthermore, the presence of edge corrugations can lead to the formation of a network of magnetic bubbles, which are unstable in non-patterned flat films.
机译:缺陷可以显着影响纳米多理由磁性装置的性能,因此在技术应用中使用之前必须良好地理解它们对材料特性的影响。然而,这是通过可重复的方式控制缺陷特性的无法阻碍而实验挑战。在这里,我们构建一种微磁模型,其占与材料的多晶性质和纳米结构的波纹边缘相关的内在和外在缺陷。通过针对垂直磁各向异性的垂直磁各向异性的高度有序的圆形CO / PD点阵列获得的测量来证实模型的预测。我们发现磁性,磁性反转和畴图案的演变强烈地通过缺陷,纳米结构的异质性和边缘波纹的密度强烈地确定。特别地,与光盘壁相比,奈埃座壁的增加是通过增加的反对直径观察到的,这表明两个反对电量之间的颈部可以表现得像宽度由阵列周期和反向器尺寸确定的纳米线。此外,边缘波纹的存在可能导致形成磁气泡网络,其在非图案化的扁平膜中不稳定。

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