自旋电子学
凝聚态物理
对称(几何)
自旋(空气动力学)
磁化
自旋霍尔效应
霍尔效应
电导率
物理
材料科学
对称性破坏
点反射
自旋工程
量子自旋霍尔效应
自旋极化
电阻率和电导率
自旋等离子体光子学
霍尔电导率
Crystal(编程语言)
齐次空间
磁场
自旋波
作者
Dameul Jeong,Seoung‐Hun Kang,Young‐Kyun Kwon
标识
DOI:10.1002/advs.202515002
摘要
Abstract Altermagnets combine zero net magnetization with spin splitting, opening new opportunities for next‐generation spintronic devices. In this work, the unconventional spin Hall conductivity (USHC) in three representative materials—RuO 2 , CrSb, and MnTe is explored. It is clarified how distinct magnetic and crystal symmetries modulate their spin Hall responses. RuO 2 exhibits only trivial USHC under a tilted geometry, demonstrating that symmetry projections alone can induce apparent unconventional elements. In contrast, CrSb and MnTe manifest robust intrinsic USHC driven by symmetry reduction through easy‐axis magnetic ordering without structural tilts. Through extensive first‐principles calculations, the complementary roles of the time‐reversal ()‐even and ‐odd components in determining the overall spin Hall conductivity are demonstrated. The findings indicate that the interplay between crystal and magnetic symmetry can be controlled through structural tilting and magnetic axis orientation. These results pave the way for the engineering of multifunctional spintronic devices. In particular, they highlight zero‐net‐moment materials with tunable spin configurations as promising platforms for coherent and robust spin transport.
科研通智能强力驱动
Strongly Powered by AbleSci AI