Department of Physics, Indian Institute of Technology Hyderabad, Kandi 502284, Telangana, India.
Information Storage Materials Laboratory, Department of Electrical and Computer Engineering, National University of Singapore, 117576, Singapore.
Nanotechnology. 2023 May 24;34(32). doi: 10.1088/1361-6528/acd2e2.
Artificial spin ice structures which are networks of coupled nanomagnets arranged on different lattices that exhibit a number of interesting phenomena are promising for future information processing. We report reconfigurable microwave properties in artificial spin ice structures with three different lattice symmetries namely square, kagome, and triangle. Magnetization dynamics are systematically investigated using field angle dependent ferromagnetic resonance spectroscopy. Two distinct ferromagnetic resonance modes are observed in square spin ice structures in contrast with the three well-separated modes in kagome and triangular spin ice structures that are spatially localized at the center of the individual nanomagnets. A simple rotation of the sample placed in magnetic field results in the merging and splitting of the modes due to the different orientations of the nanomagnets with respect to the applied magnetic field. Magnetostatic interactions are found to shift the mode positions after comparing the microwave responses from the array of nanomagnets with control simulations with isolated nanomagnets. Moreover, the extent of the mode splitting has been studied by varying the thickness of the lattice structures. The results have potential implications for microwave filter-type applications which can be operated for a wide range of frequencies with ease of tunability.
人工自旋冰结构是由排列在不同晶格上的耦合纳米磁体组成的网络,表现出许多有趣的现象,有望应用于未来的信息处理。我们报告了具有三种不同晶格对称性(正方形、 kagome 和三角形)的人工自旋冰结构中的可重构微波特性。通过场角相关的铁磁共振光谱系统地研究了磁化动力学。与 kagome 和三角形自旋冰结构中三个明显分离的模式相比,在正方形自旋冰结构中观察到两个不同的铁磁共振模式,这些模式在单个纳米磁体的中心处具有空间定位。由于纳米磁体相对于施加磁场的方向不同,因此简单地旋转放置在磁场中的样品会导致模式的合并和分裂。通过比较纳米磁体阵列的微波响应与具有孤立纳米磁体的控制模拟,发现静磁相互作用会改变模式位置。此外,通过改变晶格结构的厚度研究了模式分裂的程度。这些结果对于微波滤波器类型的应用具有潜在的意义,这些应用可以在宽频率范围内轻松调谐。