Atomic Displacements Enabling the Observation of the Anomalous Hall Effect in a Non‐Collinear Antiferromagnet

凝聚态物理 反铁磁性 自旋电子学 散射 霍尔效应 旋转倾斜 四方晶系 材料科学 自旋霍尔效应 自旋极化 物理 自旋(空气动力学) 磁化 电子 铁磁性 量子力学 磁场 相(物质) 热力学
作者
Berthold Rimmler,Binoy Krishna Hazra,Banabir Pal,K. Mohseni,James M. Taylor,Amilcar Bedoya‐Pinto,Hakan Deniz,Malleswara Rao Tangi,Ilya Kostanovskiy,Chen Luo,Robin R. Neumann,A. Ernst,F. Radu,Ingrid Mertig,H. L. Meyerheim,S. S. P. Parkin
出处
期刊:Advanced Materials [Wiley]
卷期号:35 (23) 被引量:5
标识
DOI:10.1002/adma.202209616
摘要

Abstract Antiferromagnets with non‐collinear spin structures display various properties that make them attractive for spintronic devices. Some of the most interesting examples are an anomalous Hall effect despite negligible magnetization and a spin Hall effect with unusual spin polarization directions. However, these effects can only be observed when the sample is set predominantly into a single antiferromagnetic domain state. This can only be achieved when the compensated spin structure is perturbed and displays weak moments due to spin canting that allows for external domain control. In thin films of cubic non‐collinear antiferromagnets, this imbalance is previously assumed to require tetragonal distortions induced by substrate strain. Here, it is shown that in Mn 3 SnN and Mn 3 GaN, spin canting is due to structural symmetry lowering induced by large displacements of the magnetic manganese atoms away from high‐symmetry positions. These displacements remain hidden in X‐ray diffraction when only probing the lattice metric and require measurement of a large set of scattering vectors to resolve the local atomic positions. In Mn 3 SnN, the induced net moments enable the observation of the anomalous Hall effect with an unusual temperature dependence, which is conjectured to result from a bulk‐like temperature‐dependent coherent spin rotation within the kagome plane.
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