论文标题

Kitaev材料中的磁弹性耦合各向异性的调查$α$ -rucl $ _3 $

Investigation of the magnetoelastic coupling anisotropy in the Kitaev material $α$-RuCl$_3$

论文作者

Kocsis, Vilmos, Kaib, David A. S., Riedl, Kira, Gass, Sebastian, Lampen-Kelley, Paula, Mandrus, David G., Nagler, Stephen E., Pérez, Nicolás, Nielsch, Kornelius, Büchner, Bernd, Wolter, Anja U. B., Valentí, Roser

论文摘要

Kitaev材料$α$ -rucl $ _3 $是托有质量旋转状态的最著名的候选者之一,并具有分数化激发。最近的实验和理论研究分别揭示了磁弹性耦合和磁各向异性的重要性,这是依赖于所施加的磁场方向的重要性。在这项合并的理论和实验研究中,我们研究了沿主晶体轴施加的磁场以及从蜂窝平面上倾斜的磁场的各向异性磁和磁弹性性能。我们发现,与磁化强度的各向异性相比,磁曲局各向异性异常大,这与在我们的\ textIt {ab-initio}衍生模型中的强磁弹性$ \ wideTilde {γ'} $ - 类型耦合有关。我们观察到大型的非对称磁各向异性的磁场,分别朝相反的方向倾斜,分别朝着$+c^*$或$ -c^*$ axes。观察到的定向各向异性是通过考虑磁场相对于共对准的RUCL $ _6 $ contahedra的相对方向来解释的。倾斜磁场中的磁性测量值支持这种非对称磁各向异性,但是这些实验受磁性扭矩效应的影响。将理论预测与实验发现的比较使我们能够认识到在实验设置中扭矩效应的显着贡献,其中$α$ -RUCL $ _3 $放置在倾斜的磁场中。

The Kitaev material $α$-RuCl$_3$ is among the most prominent candidates to host a quantum spin-liquid state endowed with fractionalized excitations. Recent experimental and theoretical investigations have separately revealed the importance of both the magnetoelastic coupling and the magnetic anisotropy, in dependence of the applied magnetic field direction. In this combined theoretical and experimental research, we investigate the anisotropic magnetic and magnetoelastic properties for magnetic fields applied along the main crystallographic axes as well as for fields canted out of the honeycomb plane. We found that the magnetostriction anisotropy is unusually large compared to the anisotropy of the magnetization, which is related to the strong magnetoelastic $\widetilde{Γ'}$-type coupling in our \textit{ab-initio} derived model. We observed large, non-symmetric magnetic anisotropy for magnetic fields canted out of the honeycomb $ab$-plane in opposite directions, namely towards the $+c^*$ or $-c^*$ axes, respectively. The observed directional anisotropy is explained by considering the relative orientation of the magnetic field with respect to the co-aligned RuCl$_6$ octahedra. Magnetostriction measurements in canted fields support this non-symmetric magnetic anisotropy, however these experiments are affected by magnetic torque effects. Comparison of theoretical predictions with experimental findings allow us to recognize the significant contribution of torque effects in experimental setups where $α$-RuCl$_3$ is placed in canted magnetic fields.

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