凝聚态物理
矫顽力
材料科学
铁磁共振
激光线宽
磁滞
磁化
磁各向异性
克尔效应
铁磁性
磁畴
磁化动力学
磁滞
自旋电子学
磁力显微镜
单一领域
各向异性
核磁共振
磁场
光学
物理
非线性系统
量子力学
激光器
作者
Chunjie Yan,Lina Chen,Kaiyuan Zhou,Liupeng Yang,Qingwei Fu,Wenqiang Wang,Wencheng Yue,Like Liang,Zui Tao,Jun Du,Yong-Lei Wang,Ronghua Liu
出处
期刊:Chinese Physics B
[IOP Publishing]
日期:2022-03-10
卷期号:32 (1): 017503-017503
被引量:9
标识
DOI:10.1088/1674-1056/ac5c37
摘要
We systematically investigated the Ni and Co thickness-dependent perpendicular magnetic anisotropy (PMA) coefficient, magnetic domain structures, and magnetization dynamics of Pt(5 nm)/[Co(t_Co nm)/Ni(t_Ni nm)]5/Pt(1 nm) multilayers by combining the four standard magnetic characterization techniques. The magnetic-related hysteresis loops obtained from the field-dependent magnetization M and anomalous Hall resistivity (AHR) \r{ho}_xy found that the two serial multilayers with t_Co = 0.2 and 0.3 nm have the optimum PMA coefficient K_U well as the highest coercivity H_C at the Ni thickness t_Ni = 0.6 nm. Additionally, the magnetic domain structures obtained by Magneto-optic Kerr effect (MOKE) microscopy also significantly depend on the thickness and K_U of the films. Furthermore, the thickness-dependent linewidth of ferromagnetic resonance is inversely proportional to K_U and H_C, indicating that inhomogeneous magnetic properties dominate the linewidth. However, the intrinsic Gilbert damping constant determined by a linear fitting of frequency-dependent linewidth does not depend on Ni thickness and K_U. Our results could help promote the PMA [Co/Ni] multilayer applications in various spintronic and spin-orbitronic devices.
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