论文标题

由dzyaloshinskii-moriya互动驱动的拓扑镁元素

Topological magnons driven by the Dzyaloshinskii-Moriya interaction in the centrosymmetric ferromagnet Mn$_5$Ge$_3$

论文作者

Dias, M. dos Santos, Biniskos, N., Santos, F. J. dos, Schmalzl, K., Persson, J., Bourdarot, F., Marzari, N., Blügel, S., Brückel, T., Lounis, S.

论文摘要

量子力学波函数的相位可以编码具有广泛物理后果的拓扑结构,例如异常的传输效应以及边缘状态的存在,并在扰动中强大。虽然已经对电子进行了详尽的证明,但与磁性材料中与基本准粒子相关的特性仍未得到充分展望。在这里,我们在理论上或通过非弹性中子散射实验表明散装的Ferromagnet Mn $ _5 $ ge $ _3 $主机间隔的拓扑迪拉克元音。尽管反转对称性禁止在晶胞中的净dzyaloshinskii-moriya相互作用,但它是局部允许的,并且负责镁频谱中的间隙开口。预测并通过将磁场从$ C $轴旋转使用磁场来预测和实验验证可以关闭。因此,MN $ _5 $ GE $ _3 $在三个维度上实现了一种散布的Dirac Magnon材料。它通过化学掺杂或薄膜纳米结构的可调性定义了一个令人兴奋的新平台,以探索和设计拓扑元音。更普遍地,我们验证和控制木蛋白的拓扑特征的实验途径适用于散装中心对称六角形材料,该材料需要进行系统的研究。

The phase of the quantum-mechanical wave function can encode a topological structure with wide-ranging physical consequences, such as anomalous transport effects and the existence of edge states robust against perturbations. While this has been exhaustively demonstrated for electrons, properties associated with the elementary quasiparticles in magnetic materials are still underexplored. Here, we show theoretically and via inelastic neutron scattering experiments that the bulk ferromagnet Mn$_5$Ge$_3$ hosts gapped topological Dirac magnons. Although inversion symmetry prohibits a net Dzyaloshinskii-Moriya interaction in the unit cell, it is locally allowed and is responsible for the gap opening in the magnon spectrum. This gap is predicted and experimentally verified to close by rotating the magnetization away from the $c$-axis with an applied magnetic field. Hence, Mn$_5$Ge$_3$ realizes a gapped Dirac magnon material in three dimensions. Its tunability by chemical doping or by thin film nanostructuring defines an exciting new platform to explore and design topological magnons. More generally, our experimental route to verify and control the topological character of the magnons is applicable to bulk centrosymmetric hexagonal materials, which calls for systematic investigation.

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