论文标题

了解Co $ _ {1/3} $ nbs $ _ {2} $中的异常大厅效应从水晶和磁性结构中

Understanding the Anomalous Hall effect in Co$_{1/3}$NbS$_{2}$ from crystal and magnetic structures

论文作者

Lu, K., Murzabekova, A., Shim, S., Park, J., Kim, S., Kish, L., Wu, Y., DeBeer-Schmitt, L., Aczel, A. A., Schleife, A., Mason, N., Mahmood, F., MacDougall, G. J.

论文摘要

最近在插量过渡金属二甲基元素(TMDC)Co $ _ {1/3} $ nbs $ _ {2} $下方观察到了一个大的异常大厅效应(AHE)关于如何将AHE的报告与这样的状态调和。在本文中,我们通过在Co $ $ _ {1/3} $ nbs $ _ {2} $的单晶上介绍新的中子衍射数据来解决这一争议,并进行分析,这意味着该物质顺序中的时刻为非collineArearefieration,但具有与胶线相同的插入相同的插入式插入相似的分析。我们提出了新的运输和磁性KERR测量值,这些测量表明AHE签名持续到$ t_n $以下的温度低至$ t $ = 5 k,并将它们与远程反铁磁订单牢固地关联。最后,我们表明这些AHE签名可以通过基于中子衍射确定的晶格和旋转状态来定量地通过密度功能理论(DFT)计算进行定量再现。这些结合的发现建立了“晶体大厅效应”图片的准确性,该图片表明,无论有序旋转构型的对称性如何,这种效应如何从包含手性晶格对称性的化合物中的磁轨道形状出现。这些结果阐明了发现异常霍尔材料的新途径,并激发了对插入的TMDC和其他含有抗铁磁性和手性晶格对称性的化合物的转运性能的有针对性研究。

A large anomalous Hall effect (AHE) has recently been observed in the intercalated transition metal dichalcogenide (TMDC) Co$_{1/3}$NbS$_{2}$ below a known magnetic phase transition at $T_N$ = 29 K. The spins in this material are widely believed to order in a highly symmetric collinear antiferromagnetic configuration, causing extensive debate about how reports of an AHE can be reconciled with such a state. In this article, we address this controversy by presenting new neutron diffraction data on single crystals of Co$_{1/3}$NbS$_{2}$ and an analysis that implies that moments in this material order into a non-collinear configuration, but one that maintains the same refelction symmetries as the collinear phase. We present new transport and magneto-optic Kerr measurements which show that AHE signatures persist below $T_N$ to temperatures as low as $T$ = 5 K and firmly associate them with the long-range antiferromagnetic order. Finally, we show that these AHE signatures can be quantitatively reproduced by density functional theory (DFT) calculations based on the lattice and spin state determined with neutron diffraction. These combined findings establishes the veracity of the 'crystal Hall effect' picture, which shows how such effects can emerge from the shape of magnetic orbitals in compounds containing chiral lattice symmetry regardless of the symmetry of the ordered spin configuration. These results illuminate a new path for the discovery of anomalous Hall materials and motivate a targeted study of the transport properties of intercalated TMDCs and other compounds containing antiferromagnetic order and chiral lattice symmetry.

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