Enhancement of perpendicular magnetic anisotropy in NiMnSn/Co Heterostructures: Insights from PMOKE measurements

IF 2.1 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER Solid State Communications Pub Date : 2024-08-13 DOI:10.1016/j.ssc.2024.115653
W. Belkacem , R. Belhi , N. Thabet Mliki
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Abstract

We investigated the magnetic properties of the Heusler alloy NiMnSn grown on thermally oxidized Si (100) by performing magnetic hysteresis measurements using the Polar Magneto-Optical Kerr Effect (PMOKE) technique. For a thickness of 30 nm, the NiMnSn alloy demonstrates out-of-plane magnetic anisotropy. We observed clear exchange bias, which we attribute to the exchange coupling between the spin glass and ferromagnetic phases. Our study also revealed that the growth of a 1 nm thick Heusler alloy NiMnSn layer on a cobalt layer with perpendicular anisotropy enhances the perpendicular magnetic anisotropy. However, we observed an antagonistic effect with thicker Heusler layers, resulting in a loss of perpendicular anisotropy and the appearance of an exchange bias (EB).

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镍锰硒钴异质结构中垂直磁各向异性的增强:PMOKE 测量的启示
我们利用极性磁光克尔效应(PMOKE)技术进行磁滞测量,研究了生长在热氧化硅(100)上的 Heusler 合金 NiMnSn 的磁特性。厚度为 30 纳米的镍锰硒合金显示出平面外磁各向异性。我们观察到明显的交换偏压,这归因于自旋玻璃和铁磁相之间的交换耦合。我们的研究还发现,在具有垂直各向异性的钴层上生长 1 nm 厚的 Heusler 合金镍锰硒层会增强垂直磁各向异性。然而,我们观察到更厚的 Heusler 层会产生拮抗作用,导致垂直各向异性的丧失和交换偏压(EB)的出现。
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来源期刊
Solid State Communications
Solid State Communications 物理-物理:凝聚态物理
CiteScore
3.40
自引率
4.80%
发文量
287
审稿时长
51 days
期刊介绍: Solid State Communications is an international medium for the publication of short communications and original research articles on significant developments in condensed matter science, giving scientists immediate access to important, recently completed work. The journal publishes original experimental and theoretical research on the physical and chemical properties of solids and other condensed systems and also on their preparation. The submission of manuscripts reporting research on the basic physics of materials science and devices, as well as of state-of-the-art microstructures and nanostructures, is encouraged. A coherent quantitative treatment emphasizing new physics is expected rather than a simple accumulation of experimental data. Consistent with these aims, the short communications should be kept concise and short, usually not longer than six printed pages. The number of figures and tables should also be kept to a minimum. Solid State Communications now also welcomes original research articles without length restrictions. The Fast-Track section of Solid State Communications is the venue for very rapid publication of short communications on significant developments in condensed matter science. The goal is to offer the broad condensed matter community quick and immediate access to publish recently completed papers in research areas that are rapidly evolving and in which there are developments with great potential impact.
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