自旋电子学
手性(物理)
各向异性
凝聚态物理
自旋(空气动力学)
不对称
联轴节(管道)
非平衡态热力学
物理
材料科学
密度泛函理论
对称(几何)
张量(固有定义)
过渡金属
T对称
对称性破坏
电子
电子结构
半金属
金属
拉希巴效应
角动量
磁各向异性
纳米结构
自旋工程
功能(生物学)
自旋态
作者
Tianwei Ouyang,Hang Su,Wanning Zhang,Yingying Duan,Yuxi Fang,Shunai Che,Yizhou Liu
摘要
Photomagnetic effects (PMEs), intrinsic to transition metals, arise from the interaction between light-induced angular momentum and electronic spin. These effects are suppressed in noble metals with high symmetry and electron density. Introducing chiral structures can induce photomagnetic-chiral anisotropy (PMChA) of metals by linking chirality and spin dynamics. However, a theoretical explanation remains elusive. Here, we investigated the mechanism of PMChA in tetrahelix-stacked chiral nanostructured Au chains (CNACs) using first-principles calculations. Nonequilibrium Green's function calculations reveal that chiral potentials enhance spin channel asymmetry by amplifying spin-orbit coupling (SOC)-induced spin splitting. Real-time time-dependent density functional theory simulations further identify SOC as the bridge connecting chiral spintronics to PMEs, where chirality-driven spin flips from asymmetric geometries generate opposing photomagnetic fields in materials of different handedness. These findings are consistent with experimental observations in chiral nanostructured gold films and provide theoretical guidance for designing metallic spintronic devices.
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