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元素钆中的狄拉克磁振子、节线和节面

Dirac Magnons, Nodal Lines, and Nodal Plane in Elemental Gadolinium.

作者信息

Scheie A, Laurell Pontus, McClarty P A, Granroth G E, Stone M B, Moessner R, Nagler S E

机构信息

Neutron Scattering Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA.

Computational Sciences and Engineering Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA.

出版信息

Phys Rev Lett. 2022 Mar 4;128(9):097201. doi: 10.1103/PhysRevLett.128.097201.

Abstract

We investigate the magnetic excitations of elemental gadolinium (Gd) using inelastic neutron scattering, showing that Gd is a Dirac magnon material with nodal lines at K and nodal planes at half integer ℓ. We find an anisotropic intensity winding around the K-point Dirac magnon cone, which is interpreted to indicate Berry phase physics. Using linear spin wave theory calculations, we show the nodal lines have nontrivial Berry phases, and topological surface modes. We also discuss the origin of the nodal plane in terms of a screw-axis symmetry, and introduce a topological invariant characterizing its presence and effect on the scattering intensity. Together, these results indicate a highly nontrivial topology, which is generic to hexagonal close packed ferromagnets. We discuss potential implications for other such systems.

摘要

我们利用非弹性中子散射研究了元素钆(Gd)的磁激发,结果表明Gd是一种狄拉克磁振子材料,在K点存在节线,在半整数ℓ处存在节面。我们发现围绕K点狄拉克磁振子锥存在各向异性强度缠绕,这被解释为表明存在贝里相位物理现象。通过线性自旋波理论计算,我们表明节线具有非平凡的贝里相位和拓扑表面模式。我们还根据螺旋轴对称性讨论了节面的起源,并引入了一个拓扑不变量来表征其存在及其对散射强度的影响。这些结果共同表明了一种高度非平凡的拓扑结构,这在六方密堆积铁磁体中是普遍存在的。我们讨论了对其他此类系统的潜在影响。

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