Robustness of the thermal Hall effect close to half-quantization in a field-induced spin liquid state
arXiv:2104.12184 · doi:10.1038/s41567-021-01501-y
Abstract
Thermal signatures of fractionalized excitations are a fingerprint of quantum spin liquids (QSLs). In the honeycomb magnet -RuCl, a QSL state emerges upon applying an in-plane magnetic field greater than the critical field 7 T along the a-axis, where the thermal Hall conductivity () was reported to take on the half-quantized value . This finding was discussed as a signature of an emergent Majorana edge mode predicted for the Kitaev QSL. The - and -range of the half-quantized signal and its relevance to a Majorana edge mode are, however, still under debate. Here we present a comprehensive study of in -RuCl with up to 13 T and down to 250 mK, which reveals the presence of an extended region of the phase diagram with above , in particular across a plateau-like plane for > 10 T and < 6.5 K. From 7 T up to 10 T, is suppressed to zero upon cooling to lowest temperature without any plateau-like behavior and exhibits correlations with complex anomalies in the longitudinal thermal conductivity () and magnetization around 10 T. The results are in support of a topological state with a half-quantized and suggest an interplay with crossovers or weak phase transitions beyond in RuCl.