快速切换
扭矩
切换时间
磁化
材料科学
薄脆饼
各向异性
磁滞
减刑
垂直的
磁滞
磁各向异性
相容性(地球化学)
磁场
计算机科学
霍尔效应
磁存储器
电子工程
控制理论(社会学)
反向
剩磁
凝聚态物理
稳健性(进化)
拓扑(电路)
CMOS芯片
领域(数学)
物理
光电子学
电气工程
微磁学
消磁场
旋转扭矩传递
作者
Ru Bai,Qilin Yang,Haodong Fan,Zhongshu, Feng,Mingzhang Wei,Xinyu Shu,Xiaofeng Han,Menghao Jin,Bo Liu,Tiejun Zhou,Ru Bai,Qilin Yang,Haodong Fan,Zhongshu, Feng,Mingzhang Wei,Xinyu Shu,Xiaofeng Han,Menghao Jin,Bo Liu,Tiejun Zhou
出处
期刊:Nano Letters
[American Chemical Society]
日期:2025-11-12
卷期号:25 (47): 16725-16732
标识
DOI:10.1021/acs.nanolett.5c04559
摘要
Field-free spin-orbit torque (SOT) switching of perpendicular magnetization is crucial for next-generation magnetic storage chips. However, achieving robust, uniform, and CMOS-compatible field-free SOT switching remains a significant challenge for industrial applications. Here, a robust field-free switching scheme is proposed based on a complementary double-wedge structure with tilted magnetic anisotropy induced by the tilted Pt(111) texture, yielding a remarkable z/y effective field ratio of 89.8%. Uniform performance is obtained across 2 in. wafers for key metrics─anomalous Hall resistance, switching current density, SOT equivalent field, and field-free switching ratio. Notably, the field-free switching is maintained after annealing, confirming its compatibility with CMOS back-end-of-line processes. In addition to ensuring robust field-free switching, the complementary double-wedge design offers superior uniformity compared to the traditional single-wedge structure, making it highly suitable for mass production.
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