论文标题

weyl节点环状态和兰道量化具有非常大的磁磁性的磁铁磁铁EUGA $ _4 $

Weyl nodal ring states and Landau quantization with very large magnetoresistance in square-net magnet EuGa$_4$

论文作者

Lei, Shiming, Allen, Kevin, Huang, Jianwei, Moya, Jaime M., Wu, Tsz Chun, Casas, Brian, Zhang, Yichen, Oh, Ji Seop, Hashimoto, Makoto, Lu, Donghui, Denlinger, Jonathan, Jozwiak, Chris, Bostwick, Aaron, Rotenberg, Eli, Balicas, Luis, Birgeneau, Robert, Foster, Matthew S., Yi, Ming, Sun, Yan, Morosan, Emilia

论文摘要

磁性拓扑半学(TSM)可以通过调整自旋构型来有效控制拓扑电子状态,因此是下一代电子和旋转型应用的有前途的材料。在磁性TSM中,Weyl节点线(NL)半法可能具有最大的可调性,但由于材料候选物的稀缺性,它们是迄今为止对实验研究最少的研究。在这里,使用角度分辨光发射光谱和量子振荡测量的组合,以及密度功能理论计算,我们将方形 - NET化合物EUGA4识别为新的磁性Weyl节点(NR)半学,在此中,线节点在该线节点形成了Fermi级别的封闭环。值得注意的是,Weyl NR状态在应用磁场时显示出不同的Landau量化,清晰自旋分裂。在14 t的田地2 k处,EUGA4的横向磁力超过200,000%,比其他已知的磁TSM大两个以上的数量级以上。高场磁磁度测量值表明最高40 t的饱和度。我们的理论模型表明,不饱和的MR自然是Weyl NR状态的结果。因此,我们的工作表明了在方形磁性材料中实现Weyl NR状态,并为设计具有非常大的磁力的磁性TSM设计开辟了新的途径。

Magnetic topological semimetals (TSMs) allow for an effective control of the topological electronic states by tuning the spin configuration, and therefore are promising materials for next-generation electronic and spintronic applications. Of magnetic TSMs, Weyl nodal-line (NL) semimetals likely have the most tunability, and yet they are the least experimentally studied so far due to the scarcity of material candidates. Here, using a combination of angle-resolved photoemission spectroscopy and quantum oscillation measurements, together with density functional theory calculations, we identify the square-net compound EuGa4 as a new magnetic Weyl nodal ring (NR) semimetal, in which the line nodes form closed rings in the vicinity of the Fermi level. Remarkably, the Weyl NR states show distinct Landau quantization with clear spin splitting upon application of a magnetic field. At 2 K in a field of 14 T, the transverse magnetoresistance of EuGa4 exceeds 200,000%, which is more than two orders of magnitude larger than that of other known magnetic TSMs. High field magnetoresistance measurements indicate no saturation up to 40 T. Our theoretical model indicates that the nonsaturating MR naturally arises as a consequence of the Weyl NR state. Our work thus point to the realization of Weyl NR states in square-net magnetic materials, and opens new avenues for the design of magnetic TSMs with very large magnetoresistance.

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