论文标题

EUIN2AS2中的磁性晶体对称性轴支轴支电动力学和磁场可调式狄拉克锥

Magnetic crystalline-symmetry-protected axion electrodynamics and field-tunable unpinned Dirac cones in EuIn2As2

论文作者

Riberolles, S. X. M., Trevisan, T. V., Kuthanazhi, B., Heitmann, T. W., Ye, F., Johnston, D. C., Bud'ko, S. L., Ryan, D. H., Canfield, P. C., Kreyssig, A., Vishwanath, A., McQueeney, R. J., Wang, L. -L., Orth, P. P., Ueland, B. G.

论文摘要

磁对称性知识对于利用磁性拓扑材料的非平凡表面状态至关重要。 EUIN $ _ {2} $作为$ _ {2} $是一个很好的例子,因为预计具有共线性抗磁性秩序,其中磁矩方向决定了支撑轴承相位的拓扑结晶器相位,或者是具有较高阶级的启动器相位的拓扑结晶器相位,该相位具有较高的固定器。在这里,我们使用中子衍射,对称分析和密度功能理论结果,以证明Euin $ _ {2} $作为$ _ {2} $实际上表现出低对称性的螺旋螺旋式防铁磁性顺序,这使其成为稳定的磁性磁性拓扑仪,并由时间compination $ combination $ combineration $^compination $^compintion}对称:$ C_ {2} \ times \ Mathcal {t} = 2^{\ prime} $。受$ 2^{\ prime} $保护的表面预计将具有一个异国情调的无间隙狄拉克锥,该圆锥未镀上特定的晶体动量。所有其他表面都张开狄拉克锥,并表现出半英尺量子异常的霍尔电导率。我们预测,$ h \ \ \ \ $ 2 $ t的适度施加磁场的方向可以调节无间隙和间隙的表面状态。

Knowledge of magnetic symmetry is vital for exploiting nontrivial surface states of magnetic topological materials. EuIn$_{2}$As$_{2}$ is an excellent example, as it is predicted to have collinear antiferromagnetic order where the magnetic moment direction determines either a topological-crystalline-insulator phase supporting axion electrodynamics or a higher-order-topological-insulator phase with chiral hinge states. Here, we use neutron diffraction, symmetry analysis, and density functional theory results to demonstrate that EuIn$_{2}$As$_{2}$ actually exhibits low-symmetry helical antiferromagnetic order which makes it a stoichiometric magnetic topological-crystalline axion insulator protected by the combination of a 180$^{\circ}$ rotation and time-reversal symmetries: $C_{2}\times\mathcal{T}=2^{\prime}$. Surfaces protected by $2^{\prime}$ are expected to have an exotic gapless Dirac cone which is unpinned to specific crystal momenta. All other surfaces have gapped Dirac cones and exhibit half-integer quantum anomalous Hall conductivity. We predict that the direction of a modest applied magnetic field of $H\approx1$ to $2$ T can tune between gapless and gapped surface states.

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