论文标题
具有垂直磁各向异性的图案化磁性多层的自旋动力学
Spin Dynamics in Patterned Magnetic Multilayers with Perpendicular Magnetic Anisotropy
论文作者
论文摘要
在过去的几十年中,纳米结构中的磁化动力学已经进行了广泛的研究,在那个时候,纳米磁性已经大幅发展,发现了新的效果,开发了许多应用并确定了有希望的新方向。这包括Magnonics,这是一个针对自旋波动力学及其应用的新兴研究领域。在这种情况下,具有垂直磁各向异性(PMA)的薄铁磁膜为研究旋转波提供了有趣的机会,尤其是由于在remanence中或相对较弱的外部磁场中的平面磁化而引起的旋转波。这是唯一的磁化配置,可在样品平面内提供各向同性内置自旋波传播,即正向体积磁静力自旋波几何。各向同性分散关系在设计信号处理设备方面非常重要,为直接复制各种概念从光子学到镁化提供了卓越的前景。类似于光子或语音晶体,这些晶体是光电子和语音的构建块,镁晶体被认为是镁应用中的关键成分。最近已经研究了基于PMA多层的纳米阵列和结构化的铁磁性薄膜,这些孔具有周期性的孔,通常被称为原子质晶格。证明了与传播自旋波模式,带隙的开发和密闭模式有关的新型宏伟特性。同样,已经显示了非平凡的镁带拓扑结构的存在。此外,PMA和Dzyaloshinskii-Moriya相互作用的组合导致了手性磁力态的形成,包括Néel域壁,Skyrmions和Skyrmionium态。
The magnetization dynamics in nanostructures has been extensively studied in the last decades, and nanomagnetism has evolved significantly over that time, discovering new effects, developing numerous applications, and identifying promising new directions. This includes magnonics, an emerging research field oriented on the study of spin-wave dynamics and their applications. In this context, thin ferromagnetic films with perpendicular magnetic anisotropy (PMA) offer interesting opportunities to study spin waves, in particular, due to out-of-plane magnetization in remanence or at relatively weak external magnetic fields. This is the only magnetization configuration offering isotropic in-plane spin-wave propagation within the sample plane, the forward volume magnetostatic spin-wave geometry. The isotropic dispersion relation is highly important in designing signal-processing devices, offering superior prospects for direct replicating various concepts from photonics into magnonics. Analogous to photonic or phononic crystals, which are the building blocks of optoelectronics and phononics, magnonic crystals are considered as key components in magnonics applications. Arrays of nanodots and structured ferromagnetic thin films with a periodic array of holes, popularly known as antidot lattices based on PMA multilayers have been recently studied. Novel magnonic properties related to propagating spin-wave modes, exploitation of the band gaps, and confined modes, were demonstrated. Also, the existence of nontrivial magnonic band topologies has been shown. Moreover, the combination of PMA and Dzyaloshinskii-Moriya interaction leads to the formation of chiral magnetization states, including Néel domain walls, skyrmions, and skyrmionium states.