论文标题
磁场驱动的动力学在超晶格角处扭曲的双层人造自旋冰
Magnetic field driven dynamics in twisted bilayer artificial spin ice at superlattice angles
论文作者
论文摘要
相互作用的纳米磁体的几何设计已以称为人造自旋冰的二维阵列的形式进行了广泛的研究。这些系统通常旨在造成几何挫败感,并为可能出现的异常且通常令人惊讶的现象感兴趣。先进的光刻和元素增长技术使得能够实现复杂的设计,这些设计可能涉及三个维度排列的元素。使用采用哑铃近似的数值模拟,我们检查了双层人工旋冰(BASI)的可能磁性行为,其中各个层相对于彼此旋转。目的是了解磁化动力学如何受到远程偶极耦合的影响,可以通过旋转来改变层的分离和层对齐来修改。我们认为双层层是岛屿的正方形或风车布置的双层。根据磁岛的域和域壁构型研究并讨论了磁反转过程。预测特殊角度定义双层系统的侧向自旋超晶格的特殊角度预测异常的磁顺序。
Geometrical designs of interacting nanomagnets have been studied extensively in the form of two dimensional arrays called artificial spin ice. These systems are usually designed to create geometrical frustration and are of interest for the unusual and often surprising phenomena that can emerge. Advanced lithographic and element growth techniques have enabled the realization of complex designs that can involve elements arranged in three dimensions. Using numerical simulations employing the dumbbell approximation, we examine possible magnetic behaviours for bilayer artificial spin ice (BASI) in which the individual layers are rotated with respect to one another. The goal is to understand how magnetization dynamics are affected by long-range dipolar coupling that can be modified by varying the layer separation and layer alignment through rotation. We consider bilayers where the layers are both either square or pinwheel arrangements of islands. Magnetic reversal processes are studied and discussed in terms of domain and domain wall configurations of the magnetic islands. Unusual magnetic ordering is predicted for special angles which define lateral spin superlattices for the bilayer systems.