自旋电子学
凝聚态物理
材料科学
四方晶系
薄膜
对称(几何)
扭矩
各向异性
张量(固有定义)
自旋(空气动力学)
物理
铁磁性
纳米技术
光学
几何学
相(物质)
量子力学
热力学
数学
作者
Michael Quinn Patton,Daniel A. Pharis,Gautam Gurung,Xiaoxi Huang,Gahee Noh,Evgeny Y. Tsymbal,Si‐Young Choi,Daniel C. Ralph,M. S. Rzchowski,Chang‐Beom Eom
标识
DOI:10.1002/adma.202414267
摘要
Abstract Unconventional spin‐orbit torques arising from electric‐field‐generated spin currents in anisotropic materials have promising potential for spintronic applications, including for perpendicular magnetic switching in high‐density memory applications. Here, all the independent elements of the spin torque conductivity tensor allowed by bulk crystal symmetries for the tetragonal conductor IrO 2 are determined via measurements of conventional (in‐plane) anti‐damping torques for IrO 2 thin films in the high‐symmetry (001) and (100) orientations. It is then tested whether rotational transformations of this same tensor can predict both the conventional and unconventional anti‐damping torques for IrO 2 thin films in the lower‐symmetry (101), (110), and (111) orientations, finding good agreement. The results confirm that spin‐orbit torques from all these orientations are consistent with the bulk symmetries of IrO 2 , and show how simple measurements of conventional torques from high‐symmetry orientations of anisotropic thin films can provide an accurate prediction of the unconventional torques from lower‐symmetry orientations.
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