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

Authors :
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
Publication Year :
2022

Abstract

The Kitaev material $\alpha$-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 $\widetilde{\Gamma'}$-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 $\alpha$-RuCl$_3$ is placed in canted magnetic fields.<br />Comment: main + supplementary, 12 + 3 pages, 6 + 4 figures, Accepted version

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2202.07102
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevB.105.094410