Topological magnons for thermal Hall transport in frustrated magnets with bond-dependent interactions
Emily Z. Zhang, Li Ern Chern, Yong Baek Kim

TL;DR
This paper demonstrates that topological magnons in frustrated magnets can produce a sign change in thermal Hall conductivity when reversing magnetic field direction, providing insights into thermal transport phenomena in quantum magnetic materials.
Contribution
We analytically prove and numerically verify that reversing magnetic field direction causes a sign change in magnon thermal Hall conductivity in 2D systems with commensurate magnetic order.
Findings
Reversing magnetic field sign changes magnon thermal Hall conductivity.
Sign change occurs in both magnetic orders and field-polarized states.
Plateau-like thermal Hall behavior arises in tilted magnetic fields with significant in-plane components.
Abstract
Thermal transport in topologically-ordered phases of matter provides valuable insights as it can detect the charge-neutral quasiparticles that would not directly couple to electromagnetic probes. An important example is edge heat transport of Majorana fermions in a chiral spin liquid, which leads to a half-quantized thermal Hall conductivity. This signature is precisely what has recently been measured in -RuCl under external magnetic fields. The plateau-like behavior of the half-quantized thermal Hall conductivity as a function of external magnetic field, and the peculiar sign change depending on the magnetic field orientation, has been proposed as strong evidence for the non-Abelian Kitaev spin liquid. Alternatively, for in-plane magnetic fields, it was theoretically shown that such a sign structure can also arise from topological magnons in the field-polarized state. In…
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