论文标题
曲线旋转波动力学以外的薄壳近似:磁性纳米管作为案例研究
Curvilinear spin-wave dynamics beyond the thin-shell approximation: Magnetic nanotubes as a case study
论文作者
论文摘要
磁系统的表面曲率会导致许多静态和动态效应,这些效应在同一材料的平坦系统中不存在。这些出现的磁性磁性效应可能导致旋转波的频率非交流频率,这已被证明是偶极起源的批量效应,并且与曲率诱导的对称性断裂有关。到目前为止,理论上已经研究了此类效应,主要是针对薄壳的,其中可以假定自旋波的空间曲线沿厚度均匀。在这里,使用有限元元素动态矩阵方法,我们在涡旋状态下的磁性纳米管的示例中研究了自旋波光谱从薄到厚的曲线壳的过渡。随着厚度的增加,我们观察到高阶径向模式的外观,这些模式被强烈杂交,并且类似于扁平膜中垂直固定的波(PSSW)。随着色散不对称的增加,我们发现了模式曲线的曲率诱导的非循环性。考虑到沿壳厚度的紧急几何体积电荷的不均匀性,这在非常简单的图片中对厚的曲线壳进行了解释。这种曲率诱导的模式不对称性也会导致非转录杂交,这可以促进单向自旋波传播。因此,我们还展示了曲率如何允许将高阶径向模式分成非线性三波分裂成二级模式,这也可以单向传播。我们认为,我们的研究为理解曲线磁系统中的自旋波动力学做出了重大贡献,但也为新型宏伟的应用做广告。
Surface curvature of magnetic systems can lead to many static and dynamic effects which are not present in flat systems of the same material. These emergent magnetochiral effects can lead to frequency nonreciprocity of spin waves, which has been shown to be a bulk effect of dipolar origin and is related to a curvature-induced symmetry breaking in the magnetic volume charges. So far, such effects have been investigated theoretically mostly for thin shells, where the spatial profiles of the spin waves can be assumed to be homogeneous along the thickness. Here, using a finite-element dynamic-matrix approach, we investigate the transition of the spin-wave spectrum from thin to thick curvilinear shells, at the example of magnetic nanotubes in the vortex state. With increasing thickness, we observe the appearance of higher-order radial modes which are strongly hybridized and resemble the perpendicular-standing-waves (PSSWs) in flat films. Along with an increasing dispersion asymmetry, we uncover the curvature-induced non-reciprocity of the mode profiles. This is explained in a very simple picture general for thick curvilinear shells, considering the inhomogeneity of the emergent geometric volume charges along the thickness of the shell. Such curvature-induced mode-profile asymmetry also leads to non-reciprocal hybridization which can facilitate unidirectional spin-wave propagation. With that, we also show how curvature allows for nonlinear three-wave splitting of a higher-order radial mode into secondary modes which can also propagate unidirectionally. We believe that our study provides a significant contribution to the understanding of the spin-wave dynamics in curvilinear magnetic systems, but also advertises these for novel magnonic applications.