金属/Co-Fe-B/金属夹层结构中厚度相关的吉尔伯特阻尼和软磁性

Nanomaterials Pub Date : 2024-03-28 DOI:10.3390/nano14070596
Yimo Fan, Jiawei Wang, Aitian Chen, Kai Yu, Mingmin Zhu, Yunxin Han, Sen Zhang, Xianqing Lin, Haomiao Zhou, Xixiang Zhang, Qiang Lin
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引用次数: 0

摘要

在自旋动态调制中实现低吉尔伯特阻尼参数对低能耗、高速度的自旋电子器件很有吸引力。金属铁磁合金 Co-Fe-B 因其与自旋电子技术的高度兼容性而成为可能的候选材料。在这里,我们报告了夹在两层非磁层之间的 Co-Fe-B 薄膜的厚度依赖性阻尼和软磁性,Co-Fe-B 薄膜的厚度可达 50 nm。我们观察到 Co-Fe-B 薄膜阻尼随厚度的非单调变化,这与之前报道的单调趋势截然不同。在不同的非磁层系列中,最小阻尼和相应的 Co-Fe-B 厚度差异很大,这表明结构选择会显著改变各种阻尼机制的相对贡献。因此,我们开发了一种定量方法,通过铁磁共振测量随厚度变化的阻尼,而不是传统的数值计算方法,来区分本征阻尼和外征阻尼。通过区分外在阻尼和内在阻尼,我们详细分析了影响夹层结构中 Co-Fe-B 薄膜总阻尼的每种机制。我们的研究结果表明,厚度相关阻尼测量是定量研究不同阻尼机制的有效工具。这项研究有助于了解潜在的机制,并为实现 Co-Fe-B 合金薄膜的低阻尼开辟了途径,从而有利于自旋电子器件的设计和优化应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thickness-Dependent Gilbert Damping and Soft Magnetism in Metal/Co-Fe-B/Metal Sandwich Structure
The achievement of the low Gilbert damping parameter in spin dynamic modulation is attractive for spintronic devices with low energy consumption and high speed. Metallic ferromagnetic alloy Co-Fe-B is a possible candidate due to its high compatibility with spintronic technologies. Here, we report thickness-dependent damping and soft magnetism in Co-Fe-B films sandwiched between two non-magnetic layers with Co-Fe-B films up to 50 nm thick. A non-monotonic variation of Co-Fe-B film damping with thickness is observed, which is in contrast to previously reported monotonic trends. The minimum damping and the corresponding Co-Fe-B thickness vary significantly among the different non-magnetic layer series, indicating that the structure selection significantly alters the relative contributions of various damping mechanisms. Thus, we developed a quantitative method to distinguish intrinsic from extrinsic damping via ferromagnetic resonance measurements of thickness-dependent damping rather than the traditional numerical calculation method. By separating extrinsic and intrinsic damping, each mechanism affecting the total damping of Co-Fe-B films in sandwich structures is analyzed in detail. Our findings have revealed that the thickness-dependent damping measurement is an effective tool for quantitatively investigating different damping mechanisms. This investigation provides an understanding of underlying mechanisms and opens up avenues for achieving low damping in Co-Fe-B alloy film, which is beneficial for the applications in spintronic devices design and optimization.
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