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APS -APS March Meeting 2017 - Event - Investigation of the anomalous Hall effect in non-collinear and non-coplanar magnets

机译:APS -APS 2017年3月会议-活动-非共线和非共面磁体中异常霍尔效应的研究

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Magnetic frustration causes non-collinear and non-coplanar spin structures including complicated helical and conical magnetic states. Interestingly, these magnets had been found to have a drastic effect on the conductivity of a material and may also lead to exotic states of matter, such as skyrmions in FeGe [1], and superconductivity in CrAs [2]. Because conduction electrons are affected by a fictitious magnetic field of astronomical strength in the topological spin structure of these magnets, which gives rise to a large anomalous Hall effect (AHE). The AHE in zero applied magnetic field was realized experimentally in spin liquid system Pr2Ir2O7 [3] and the antiferromagnet Mn3Sn [4]. However, the relationship between crystal structure and the magnetic states, or how structure influences the strength of the coupling of the magnetic moments to the conduction electrons, is not well understood yet. Here, we report measurements of the AHE in various non-collinear and non-coplanar magnets. [1] Nature Materials 10, 106--109 (2011) X. Z. Yu et al. [2] Nature Communications 5, 5508 (2014) Wei Wu et al. [3] Nature 463, 210 (2010) Y. Machida et al. [4] Nature 527, 212 (2015) S. Nakatsuji et al.
机译:磁性挫折会导致非共线和非共面的自旋结构,包括复杂的螺旋和圆锥形磁态。有趣的是,已发现这些磁体对材料的电导率有巨大影响,并且还可能导致物质的异质状态,例如FeGe中的天空离子[1]和CrAs中的超导电性[2]。因为传导电子受这些磁体的拓扑自旋结构中的天文强度的虚拟磁场影响,所以会产生较大的异常霍尔效应(AHE)。在自旋液体系统Pr2Ir2O7 [3]和反铁磁体Mn3Sn [4]中通过实验实现了零施加磁场中的AHE。然而,对于晶体结构和磁态之间的关系,或者结构如何影响磁矩与传导电子的耦合强度,还没有很好的理解。在这里,我们报告了各种非共线和非共面磁体中AHE的测量结果。 [1] Nature Materials 10,106--109(2011)X.Z.Yu等。 [2] Nature Communications 5,5508(2014)Wei Wu等。 [3] Nature 463,210(2010)Y. Machida等。 [4] Nature 527,212(2015)S. Nakatsuji等。

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