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Topological thermal Hall effect due to Weyl magnons

机译:由于Weyl Magnons,拓扑热厅效应

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We present the first theoretical evidence of zero magnetic field topological (anomalous) thermal Hall effect due to Weyl magnons in stacked noncoplanar frustrated kagome antiferromagnets. The Weyl magnons in this system result from macroscopically broken time-reversal symmetry by the scalar spin chirality of noncoplanar chiral spin textures. Most importantly, they come from the lowest excitation, therefore they can be easily observed experimentally at low temperatures due to the population effect. Similar to electronic Weyl nodes close to the Fermi energy, Weyl magnon nodes at the lowest excitation are the most important. Indeed, we show that the topological (anomalous) thermal Hall effect in this system arises from nonvanishing Berry curvature due to Weyl magnon nodes at the lowest excitation, and it depends on their distribution (distance) in momentum space. The present result paves the way to directly probe low excitation Weyl magnons and macroscopically broken time-reversal symmetry in three-dimensional frustrated magnets with the anomalous thermal Hall effect.
机译:我们介绍了零磁场拓扑(异常)热霍尔效应的第一个理论证据,由于堆积的非平板令人沮丧的kagome反霉菌镜头。该系统中的Weyl Magnons由宏观破裂的时逆对称由非平衡手性旋转纹理的标量旋转手术。最重要的是,它们来自最低激发,因此由于人口效应,它们可以在低温下通过实验实验观察。类似于靠近费米能量的电子Weyl节点,最低激励的Weyl Magnon节点是最重要的。实际上,我们表明,由于在最低激励下的Weyl Magnon节点,该系统中的拓扑(异常)热霍米波效应来自非衰强浆果曲率,并且它取决于它们在动量空间中的分布(距离)。本结果铺设了直接探测低激发堰巨蜥的方式,并在具有异常热霍尔效应的三维令人沮丧的磁体中宏观破裂的时间反转对称。

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