Successive topological phase transitions in two distinct spin-flop phases on the honeycomb lattice
Xudong Li, Jize Zhao, Jinbin Li, Qiang Luo

TL;DR
This paper investigates topological magnon phases induced by in-plane magnetic fields in honeycomb lattice Kitaev magnets, revealing complex phase diagrams and contrasting behaviors in thermal Hall conductivity across different spin-flop phases.
Contribution
It provides the first detailed analysis of topological magnons and phase transitions in in-plane field-induced spin-flop phases on the honeycomb lattice, including analytical boundary calculations.
Findings
Two distinct in-plane field-induced spin-flop phases identified.
Topological phase diagrams mapped out showing Chern number variations.
Thermal Hall conductivity exhibits contrasting behaviors across phase transitions.
Abstract
The Kitaev magnets with bond-dependent interactions have garnered considerable attention in recent years for their ability to harbor exotic phases and nontrivial excitations. The topological magnons, which are indicated by nonzero Chern number that can enhance the thermal Hall conductivity, are proposed to partially explain thermal Hall measurements in real materials. Hitherto, topological magnons have been extensively explored when the magnetic field is normal to the honeycomb plane, but their topological characteristics are less studied in the presence of in-plane magnetic field. Here, we study two distinct in-plane field induced spin-flop phases in the - model, both of which are off-diagonal couplings that have intimate relation to the Kitaev interaction. The two spin-flop phases are distinguished by their out-of-plane spin components which can be either antiparallel…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Topological Materials and Phenomena · Theoretical and Computational Physics
