论文标题
通过限制调整磁性膜中的自旋激发
Tuning spin excitations in magnetic films by confinement
论文作者
论文摘要
磁性薄膜的旋转激发是旋转,镁和磁性设备中新型传输概念的基础。虽然自旋动力学已经在散装材料中进行了广泛的研究,但由于实验局限性,它们在介观膜中的行为尚不清楚。在这里,我们采用谐振非弹性X射线散射来研究介质Fe膜中的自旋激发光谱,从散装状到3个单位细胞厚。在散装样品中,我们发现各向同性的分散性铁磁磁与中子散射在散装单晶中观察到的分散体一致。随着厚度的降低,这些铁磁虫生存下来并在各向异性上进化:沿平面外方向降低能量,同时将它们的分散体沿面内方向保留。这种厚度的依赖性是通过简单的海森堡模型计算来捕获的,该计算通过FE键的损失来考虑平面外向的限制。我们的发现突出了介质缩放对自旋动力学的影响,并将厚度识别为用于微调和控制膜中磁性特性的旋钮。
Spin excitations of magnetic thin films are the founding element for novel transport concepts in spintronics, magnonics, and magnetic devices in general. While spin dynamics have been extensively studied in bulk materials, their behaviour in mesoscopic films is less known due to experimental limitations. Here, we employ Resonant Inelastic X-Ray Scattering to investigate the spin excitation spectrum in mesoscopic Fe films, from bulk-like down to 3 unit cells thick. In bulk-like samples, we find isotropic, dispersive ferromagnons consistent with the dispersion observed by neutron scattering in bulk single crystals. As the thickness is reduced, these ferromagnons survive and evolve anisotropically: renormalising to lower energies along the out-of-plane direction while retaining their dispersion in the in-plane direction. This thickness dependence is captured by simple Heisenberg model calculations accounting for the confinement in the out-of-plane direction through the loss of Fe bonds. Our findings highlight the effects of mesoscopic scaling on spin dynamics and identify thickness as a knob for fine-tuning and controlling magnetic properties in films.