论文标题
磁性Weyl Semimetal Co $ _3 $ sn $ _2 $ S $ _2 $
Localized spin-orbit polaron in magnetic Weyl semimetal Co$_3$Sn$_2$S$_2$
论文作者
论文摘要
Kagome Lattice Co $ _3 $ sn $ _2 $ S $ _2 $展示了磁性Weyl半学的典型拓扑现象,例如手性异常和Fermi-Arc表面状态。探测其磁性对于理解这种相关拓扑状态至关重要。在这里,使用自旋扫描隧道显微镜/光谱(STM/s),我们报告了局部旋转型极性极性(SOP)的发现,其中三倍旋转对称性在CO $ _3 $ _3 $ SN $ _2 $ _2 $ s $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $中。 SOP携带自旋极化磁矩和与浆果相和持续循环电流相关的拓扑起源的大轨道磁化。通过原子力显微镜和STM检测到SOP的明显磁弹性耦合。我们的发现表明,SOP可以增强磁性Weyl节点的磁性和稳定性,以实现更稳定的时间为反转对称性的拓扑现象。 SOP的受控工程可能会为功能量子设备中的实际应用铺平道路。
The kagome lattice Co$_3$Sn$_2$S$_2$ exhibits the quintessential topological phenomena of a magnetic Weyl semimetal such as the chiral anomaly and Fermi-arc surface states. Probing its magnetic properties is crucial for understanding this correlated topological state. Here, using spin-polarized scanning tunneling microscopy/spectroscopy (STM/S), we report the discovery of localized spin-orbit polarons (SOPs) with three-fold rotation symmetry nucleated around single-S vacancies in Co$_3$Sn$_2$S$_2$. The SOPs carry a spin-polarized magnetic moment and a large orbital magnetization of a topological origin associated with the Berry phase and the persistent circulating current. Appreciable magneto-elastic coupling of the SOP is detected by atomic force microscope and STM. Our findings suggest that the SOPs can enhance magnetism and stability of the magnetic Weyl nodes for more robust time-reversal-symmetry-breaking topological phenomena. Controlled engineering of the SOPs may pave the way toward practical applications in functional quantum devices.