Spin excitation continuum to topological magnon crossover and thermal Hall conductivity in Kitaev magnets
Emily Z. Zhang, Reja H. Wilke, Yong Baek Kim

TL;DR
This paper investigates the finite temperature crossover from quantum spin liquid excitations to topological magnons in Kitaev magnets, analyzing their signatures in dynamical structure factors and thermal Hall conductivity.
Contribution
It provides a theoretical analysis of crossover behavior between spin liquid and topological magnon states at finite temperature in models with large Kitaev interactions.
Findings
Crossover behavior observed near zero-temperature phase transitions.
Gradual evolution of dynamical spin structure factor with magnetic field.
Nonlinear effects influence topological magnon properties.
Abstract
There has been great interest in identifying a Kitaev quantum spin liquid state in frustrated magnets with bond-dependent interactions. In particular, the experimental report of a half-quantized thermal Hall conductivity in -RuCl in the presence of a magnetic field has generated excitement as it could be strong evidence for a field-induced chiral spin liquid. More recent experiments, however, provide a conflicting interpretation advocating for topological magnons in the field-polarized state as the origin of the non-quantized thermal Hall conductivity observed in their experiments. An inherent difficulty in distinguishing between the two scenarios is the phase transition between a putative two-dimensional spin liquid and the field-polarized state exists only at zero temperature, while the behaviour at finite temperature is mostly crossover phenomena. In this work, we provide…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Physics of Superconductivity and Magnetism · Quantum many-body systems
