Wuhan National High Magnetic Field Center and School of Physics, Huazhong University of Science and Technology, Wuhan, 430074, China.
Department of Condensed Matter Physics, Weizmann Institute of Science, 7610001, Rehovot, Israel.
Nat Commun. 2023 Mar 24;14(1):1642. doi: 10.1038/s41467-023-37076-w.
During the past two decades, it has been established that a non-trivial electron wave-function topology generates an anomalous Hall effect (AHE), which shows itself as a Hall conductivity non-linear in magnetic field. Here, we report on an unprecedented case of field-linear AHE. In MnSn, a kagome magnet, the out-of-plane Hall response, which shows an abrupt jump, was discovered to be a case of AHE. We find now that the in-plane Hall response, which is perfectly linear in magnetic field, is set by the Berry curvature of the wavefunction. The amplitude of the Hall response and its concomitant Nernst signal exceed by far what is expected in the semiclassical picture. We argue that magnetic field induces out-of-plane spin canting and thereafter gives rise to nontrivial spin chirality on the kagome lattice. In band structure, we find that the spin chirality modifies the topology by gapping out Weyl nodal lines unknown before, accounting for the AHE observed. Our work reveals intriguing unification of real-space Berry phase from spin chirality and momentum-space Berry curvature in a kagome material.
在过去的二十年中,人们已经确定非平庸的电子波函数拓扑会产生反常霍尔效应(AHE),这种效应表现为磁场中非线性的霍尔电导率。在这里,我们报告了一个前所未有的场线性 AHE 案例。在 Kagome 磁体 MnSn 中,我们发现垂直于平面的 Hall 响应是 AHE,它表现出突然的跳跃。现在我们发现,磁场中完全线性的平面 Hall 响应是由波函数的 Berry 曲率决定的。Hall 响应的幅度及其伴随的 Nernst 信号远远超过了半经典图像的预期。我们认为,磁场诱导出平面外的自旋倾斜,从而在 Kagome 晶格上产生非平庸的自旋手性。在能带结构中,我们发现自旋手性通过消除以前未知的 Weyl 节点线来改变拓扑,从而解释了所观察到的 AHE。我们的工作揭示了在 Kagome 材料中,来自自旋手性的实空间 Berry 相位和来自动量空间 Berry 曲率之间引人入胜的统一。