凝聚态物理
磁化
隧道磁电阻
磁阻随机存取存储器
磁场
材料科学
扭矩
切换时间
隧道枢纽
电流密度
自旋(空气动力学)
偶极子
领域(数学)
电气工程
量子隧道
物理
光电子学
铁磁性
工程类
计算机科学
随机存取存储器
热力学
量子力学
纯数学
数学
计算机硬件
作者
M. Shashidhara,Vikas Nehra,Shobit Srivatsava,Sourabh Panwar,Abhishek Acharya
标识
DOI:10.1109/ted.2023.3237654
摘要
Spin Hall-assisted magnetization switching in a three-terminal magnetic tunnel junction (MTJ) has attracted much attention due to its high-speed magnetization switching, which enables low-power memory and logic applications. In this study, 2-D materials with high spin–orbit coupling (SOC) effects and high charge-to-spin conversion efficiency are used to assess the performance characteristics of spin–orbit torque MTJ (SOT-MTJ). External field-free switching in SOT-MTJ is accomplished by employing a standard MTJ structure with a bias magnetic layer on top of the structure that projects a dipolar magnetic field onto a free layer (FL). In addition, the Dzyaloshinskii–Moriya interaction (DMI), an asymmetric exchange interaction, is considered while evaluating the critical current density. We were able to demonstrate that the required critical current density decreases by 99.5%, while the switching speed increases by 86.67% in the proposed external field-free 2-D material-based SOT-MTJ. We have also shown the significance of DMI in the field-free switching of the magnetization without the requirement for additional mechanisms when the device shrank down to the subnanometer regime.
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