论文标题
曲率诱导的六边形纳米管中不对称的自旋波散分散体的实验观察
Experimental observation of the curvature-induced asymmetric spin-wave dispersion in hexagonal nanotubes
论文作者
论文摘要
关于弯曲的磁纳米对象的理论和数值研究预测了许多令人兴奋的效果,这些效果可称为磁性效应,这些作用不是源自内在的dzyaloshinskii-moriya相互作用或表面诱导的各向异性。这些手性效应的起源是所有磁性材料中存在的各向同性交换或偶极 - 偶极相互作用,但通过曲率重新归一化。在这里,我们通过实验证明,通过使用时间分辨的扫描传输X射线显微镜测量具有六边形横截面的磁性纳米管中的自旋波传播,可以直接观察到源自偶极 - 偶极相互作用的曲率诱导效应。我们表明,当传播方向垂直于静态磁化时,分散关系是不对称的,在波矢量的逆转时是不对称的。因此,相同频率的反向传播旋转波显示出不同的Wavelenghts。六边形纳米管具有复杂的分散体,这是由定位在平面面或方面之间极为弯曲区域的自旋波模式引起的。通过实验获得的分散关系和微磁模拟获得的分散关系非常吻合。 %都存在所有模式的不对称自旋传输,从而促进了用于宏伟应用的六边形纳米管。这些结果表明,在3D中可以使用自旋波传输,并且偶极 - 偶极诱导的磁磁效应是显着的。
Theoretical and numerical studies on curved magnetic nano-objects predict numerous exciting effects that can be referred to as magneto-chiral effects, which do not originate from the intrinsic Dzyaloshinskii-Moriya interaction or surface-induced anisotropies. The origin of these chiral effects is the isotropic exchange or the dipole-dipole interaction present in all magnetic materials but renormalized by the curvature. Here, we demonstrate experimentally that curvature induced effects originating from the dipole-dipole interaction are directly observable by measuring spin-wave propagation in magnetic nanotubes with hexagonal cross section using time resolved scanning transmission X-ray microscopy. We show that the dispersion relation is asymmetric upon reversal of the wave vector when the propagation direction is perpendicular to the static magnetization. Therefore counter-propagating spin waves of the same frequency exhibit different wavelenghts. Hexagonal nanotubes have a complex dispersion, resulting from spin-wave modes localised to the flat facets or to the extremely curved regions between the facets. The dispersion relations obtained experimentally and from micromagnetic simulations are in good agreement. %The asymmetric spin-wave transport is present for all modes, promoting hexagonal nanotubes for magnonic applications. These results show that spin-wave transport is possible in 3D, and that the dipole-dipole induced magneto-chiral effects are significant.