自旋电子学
凝聚态物理
反铁磁性
自旋霍尔效应
磁化
自旋(空气动力学)
霍尔效应
材料科学
联轴节(管道)
自旋等离子体光子学
磁性结构
自旋结构
自旋极化
空中骑兵
量子自旋霍尔效应
Crystal(编程语言)
磁场
自旋工程
热霍尔效应
旋转泵
相变
垂直的
作者
Yuxiang Zhu,Lei Han,Yingying Zhang,Xiaoyu Feng,Hua Bai,Xiaolong Fan,Jiankun Dai,Yichi Zhang,Xizhi Fu,Shixuan Liang,Yanzhang Cao,Junwei Liu,Feng Pan,Cheng Song,Na Chen
标识
DOI:10.1002/adfm.202505406
摘要
Abstract The spin Hall effect (SHE) is a key mechanism for the generation of spin currents, driving the advancement of energy‐efficient spintronic devices. Spin current generation is influenced by multiple factors, making it challenging to distinguish the role of magnetization from structural factors. Therefore, the coexistence of diverse magnetic structures within the same crystal structure and atomic composition provides an ideal platform for such an investigation. In this work, a novel magnetic structure‐dependent spin Hall effect is demonstrated in Mn 5 Si 3 , which features both collinear and non‐collinear antiferromagnetic structures with the same crystal structure. Our findings reveal a significant enhancement in the spin Hall angle during the transition from collinear to non‐collinear antiferromagnetic structures, originating from the enhanced spin‐orbit coupling induced by the non‐collinear antiferromagnetic order in Mn 5 Si 3 . Furthermore, based on this magnetic structure‐dependent spin Hall effect, the efficiency of spin‐orbit torque switching of perpendicular magnetization is enhanced in the non‐collinear phase compared to the collinear one. This study advances the controllable spin sources and provides valuable insights into the construction of energy‐efficient spintronic devices.
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