论文标题

EUAUAS单晶的电子结构和物理特性

Electronic structure and physical properties of EuAuAs single crystal

论文作者

Malick, S., Singh, J., Laha, A., Kanchana, V., Hossain, Z., Kaczorowski, D.

论文摘要

通过粉末X射线衍射,磁化,磁敏感性,热容量,电阻率和磁化率测量来研究EUAUA的高质量单晶。该复合物与Zrsibe类型的六角形结构(空间群$ p6_3/mmc $)结晶。由于二价欧洲离子的磁矩,它以低于6 K的速率下降。电阻率表现出低至40 K的金属行为,然后在低温下急剧增加。与磁化数据一起,磁转运等温线显示出独特的元磁样过渡。 \ mbox {euauas}中的抗磁基态在\ textIt {ab intio}电子带结构计算中得到了证实。最值得注意的是,计算揭示了没有旋转轨道耦合的淋巴结线,并包括带有自旋轨道耦合的dirac点。 \ textit {z} $ _ 2 $在有效的时间逆转和反转对称性下使该系统非平凡的拓扑材料。我们的发现与实验分析相结合,使EUAUAS成为反铁磁性拓扑结节半学的合理候选者。

High-quality single crystals of EuAuAs were studied by means of powder x-ray diffraction, magnetization, magnetic susceptibility, heat capacity, electrical resistivity and magnetoresistance measurements. The compound crystallizes with a hexagonal structure of the ZrSiBe type (space group $P6_3/mmc$). It orders antiferromagnetically below 6 K due to the magnetic moments of divalent Eu ions. The electrical resistivity exhibits metallic behavior down to 40 K, followed by a sharp increase at low temperatures. The magnetotransport isotherms show a distinct metamagnetic-like transition in concert with the magnetization data. The antiferromagnetic ground state in \mbox{EuAuAs} was corroborated in the \textit{ab initio} electronic band structure calculations. Most remarkably, the calculations revealed the presence of nodal line without spin-orbit coupling and Dirac point with inclusion of spin-orbit coupling. The \textit{Z}$_2$ invariants under the effective time reversal and inversion symmetries make this system nontrivial topological material. Our findings, combined with experimental analysis, makes EuAuAs a plausible candidate for an antiferromagnetic topological nodal-line semimetal.

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