纳米磁铁
凝聚态物理
各向异性
磁各向异性
调制(音乐)
自旋轨道相互作用
轨道(动力学)
物理
磁阻随机存取存储器
自旋流
材料科学
磁化
磁场
计算机科学
随机存取存储器
光学
航空航天工程
工程类
计算机硬件
量子力学
声学
出处
期刊:AIP Advances
[American Institute of Physics]
日期:2025-01-01
卷期号:15 (1)
被引量:1
摘要
We present a novel method for measuring the modulation of magnetic anisotropy and the strength of spin–orbit interaction by an electrical current in nanomagnets. Our systematic study explores the current dependencies of these properties across a variety of nanomagnets with different structures, compositions, and sizes, providing unprecedented insights into the complex physical origins of this effect. We identified two distinct contributions to the observed current modulation: one proportional to the current and the other to the square of the current. The squared-current contribution, originating from the spin Hall effect, uniquely accumulates the strength with an increasing number of interfaces, resulting in exceptionally large current modulation of magnetic anisotropy and spin–orbit interaction in multilayer nanomagnets. Conversely, the linear-current contribution stems from the ordinary and anomalous Hall effects and exhibits opposite polarity at different interfaces, making it significant only in asymmetrical single-layer nanomagnets. The squared-current contribution induces substantial anisotropy field changes, up to 30%–50% at typical magnetic random access memory (MRAM) recording currents, leading to thermally activated magnetization reversal and data recording. The linear-current contribution, while smaller, is effective for parametric magnetization reversal, providing sufficient modulation for efficient data recording through resonance mechanisms. This finding highlights the complex nature of spin accumulation and spin dynamics at the nanoscale, presenting an opportunity for further optimization of data recording in MRAM technology.
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