材料科学
磁化
凝聚态物理
微晶
铁磁性
磁各向异性
太赫兹辐射
无定形固体
磁化动力学
光电子学
结晶学
磁场
物理
化学
冶金
量子力学
作者
Yuta Sasaki,Ryoya Hiramatsu,Yohei Kota,Takahide Kubota,Y. Sonobe,Akimasa Sakuma,Kōki Takanashi,S. Kasai,Y. K. Takahashi
出处
期刊:Small
[Wiley]
日期:2022-04-15
卷期号:18 (20): e2200378-e2200378
被引量:7
标识
DOI:10.1002/smll.202200378
摘要
Abstract A ferromagnetic metal nanolayer with a large perpendicular magnetic anisotropy, small saturation magnetization, and small magnetic damping constant is a crucial requirement for high‐speed spintronic devices. Fabrication of these devices on Si/SiO 2 amorphous substrates with polycrystalline structure is also strongly desired for the mass production industry. This study involves the investigation of sub‐terahertz (THz) magnetization precessional motion in a newly developed material system consisting of Cu 2 Sb‐type MnAlGe and (Mn–Cr)AlGe films by means of an all‐optical pump‐probe method. These materials exhibit large perpendicular magnetic anisotropy in regions of a few nanometers in size. The pseudo‐2D crystal structures are clearly observed in the high‐resolution transmission electron microscopy (TEM) images for the film samples grown on thermally oxidized silicon substrates. The TEM images also show a partial substitution of Cr atoms for the Mn sites in MnAlGe. A magnetization precession frequency of 0.164 THz with a relatively small effective magnetic damping constant of 0.012 is obtained for (Mn–Cr)AlGe. Theoretical calculation infers that the modification of the total density of states by Cr substitution decreases the intrinsic magnetic damping constant of (Mn–Cr)AlGe.
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