论文标题

平面电子各向异性通过层间电阻率测量在基于铁的超导体母体化合物Cafeasf上揭示

In-plane electronic anisotropy revealed by interlayer resistivity measurements on the iron-based superconductor parent compound CaFeAsF

论文作者

Terashima, Taichi, Hirose, Hishiro T., Matsushita, Yoshitaka, Uji, Shinya, Ikeda, Hiroaki, Fuseya, Yuki, Wang, Teng, Mu, Gang

论文摘要

铜岩和基于铁的超导体都表现出nematicities,被定义为电子系统中旋转对称性的自发断裂。列态可以在这些化合物的高过度 - 温度超导性中发挥作用。但是,基于铁的化合物中负责转运各向异性的微观机制仍然值得商bat。在这里,我们通过测量具有不同磁场方向的磁场下的层间电阻率来研究CAFEASF的电子各向异性。违反直觉,在纵向配置($ b \ parallel I \并行c $)中,层间电阻率要比横向一($ b \ perp i \ Parallel c $)大。层间电阻率在平面内场下表现出所谓的相干峰,并且相对于平面场方向是高度各向异性的。在$ t $ = 4 k和$ b $ = 14 t时,磁固定$Δρ/ρ_0$在$ b \ parallel b_o $中比$ b \ Parallel A_O $配置大的七倍。我们基于第一原理电子带结构对电导率进行的理论计算对上述观测值进行了定性重现,但低估了观察到的特征的幅度。所提出的方法可以是在各种材料中探测列神经电子状态的强大工具。

Both cuprates and iron-based superconductors demonstrate nematicity, defined as the spontaneous breaking of rotational symmetry in electron systems. The nematic state can play a role in the high-transition-temperature superconductivity of these compounds. However, the microscopic mechanism responsible for the transport anisotropy in iron-based compounds remains debatable. Here, we investigate the electronic anisotropy of CaFeAsF by measuring its interlayer resistivity under magnetic fields with varying field directions. Counterintuitively, the interlayer resistivity was larger in the longitudinal configuration ($B \parallel I \parallel c$) than in the transverse one ($B \perp I \parallel c$). The interlayer resistivity exhibited a so-called coherence peak under in-plane fields and was highly anisotropic with respect to the in-plane field direction. At $T$ = 4 K and $B$ = 14 T, the magnetoresistance $Δρ/ρ_0$ was seven times larger in the $B \parallel b_o$ than in the $B \parallel a_o$ configuration. Our theoretical calculations of the conductivity based on the first-principles electronic band structure qualitatively reproduced the above observations but underestimated the magnitudes of the observed features. The proposed methodology can be a powerful tool for probing the nematic electronic state in various materials.

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