Oscillations in the magnetothermal conductivity of -RuCl: Evidence of transition anomalies
arXiv:2301.05254 · doi:10.1103/PhysRevB.107.064408
Abstract
The 2D layered insulator -RuCl is a candidate material for a quantum spin-liquid state, which may be realized when a magnetic field suppresses the antiferromagnetic order present at low temperature. Oscillations in the field dependence of the thermal conductivity, observed for an in-plane magnetic field up to a critical field , have been attributed to exotic charge-neutral fermions, viewed as evidence of a quantum spin-liquid state between the critical field T at which the antiferromagnetic phase ends and . Here we report measurements of the thermal conductivity of -RuCl as a function of magnetic field up to 15 T applied in two distinct in-plane directions: parallel and perpendicular to the Ru-Ru bond. We find that the number of oscillations between and is the same for the two field directions even though the field interval between and is different. In other words, the period of the oscillations is controlled by the transition fields and . We conclude that these are not true oscillations -- coming from putative fermions in a spin-liquid state -- but anomalies associated with a sequence of magnetic transitions.
7 pages, 8 figures
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