铁磁性
凝聚态物理
垂直的
自旋(空气动力学)
扭矩
纳米尺度
轨道(动力学)
物理
材料科学
量子力学
数学
几何学
工程类
航空航天工程
热力学
作者
Xue Zhang,Zhengde Xu,Zhifeng Zhu
出处
期刊:Physical review
日期:2024-11-26
卷期号:110 (18)
标识
DOI:10.1103/physrevb.110.184428
摘要
The scaling of magnetic memory into nanometer size calls for a theoretical model to accurately predict the switching current. Previous models show a large discrepancy with experiments in studying the spin-orbit torque switching of the perpendicular magnet. In this work, we observed that the trajectory of magnetization shows a smooth transition during the switching. This contradicts the magnetization dynamics proposed in previous models, which suggest that magnetization first aligns with the spin polarization (\ensuremath{\sigma}) before switching can occur. We demonstrate that aligning magnetization to \ensuremath{\sigma} requires a very large current, resulting in the unsatisfactory fitting between the previous models and experiments. In contrast, the smooth transition permits a lower switching current. Guided by this refined physical picture, we pinpoint the reversal of precession chirality as a pivotal factor for achieving deterministic switching. This insight contributes to the development of an analytical model that shows good alignment with the experimental data. We offer a clearer understanding of the current-induced magnetization switching process, which will benefit the advancements in spin-orbit torque magnetic random-access memory.
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