Materials Genome Institute, Shanghai University, Shangda Road 99, 200444, Shanghai, China.
INPAC-Institute for Nanoscale Physics and Chemistry, KU Leuven, Celestijnenlaan 200D, B-3001, Leuven, Belgium.
Nat Commun. 2018 Jul 3;9(1):2576. doi: 10.1038/s41467-018-05045-3.
Design and manipulation of magnetic moment arrays have been at the focus of studying the interesting cooperative physical phenomena in various magnetic systems. However, long-range ordered magnetic moments are rather difficult to achieve due to the excited states arising from the relatively weak exchange interactions between the localized moments. Here, using a nanostructured superconductor, we investigate a perfectly ordered magnetic dipole pattern with the magnetic poles having the same distribution as the magnetic charges in an artificial spin ice. The magnetic states can simply be switched on/off by applying a current flowing through nanopatterned area. Moreover, by coupling magnetic dipoles with the pinned vortex lattice, we are able to erase the positive/negative poles, resulting in a magnetic dipole pattern of only one polarity, analogous to the recently predicted vortex ice. These switchable and tunable magnetic dipole patterns open pathways for the study of exotic ordering phenomena in magnetic systems.
设计和操控磁矩阵列一直是研究各种磁性系统中有趣的协同物理现象的焦点。然而,由于局域磁矩之间的交换相互作用较弱,长程有序的磁矩很难实现。在这里,我们使用纳米结构超导体研究了具有与人工自旋冰中磁荷相同分布的磁偶极子的完美有序磁矩图案。通过在纳米图案区域中流动电流,可简单地开启/关闭磁状态。此外,通过将磁偶极子与固定的涡旋晶格耦合,我们能够擦除正/负磁极,从而形成仅具有一种极性的磁偶极子图案,类似于最近预测的涡旋冰。这些可切换和可调谐的磁偶极子图案为研究磁性系统中的奇异有序现象开辟了道路。