Thermal Hall effect from two-dimensional Schwinger-boson gas with Rashba spin-orbit interaction: application to ferromagnets with in-plane Dzyaloshinskii-Moriya interaction
Sungjoon Park, Bohm-Jung Yang

TL;DR
This paper demonstrates that in two-dimensional ferromagnets with in-plane Dzyaloshinskii-Moriya interaction, the thermal Hall effect arises from magnon interactions beyond linear spin wave theory, modeled via Schwinger-boson mean field theory.
Contribution
It reveals that the thermal Hall effect can originate from in-plane DM interactions through Schwinger-boson analysis, challenging the linear spin wave theory's predictions.
Findings
Thermal Hall effect persists under large magnetic fields.
Linear spin wave theory underestimates the effect, highlighting magnon interactions.
Schwinger-boson approach maps to Rashba spin-orbit coupled electron gas.
Abstract
Recently, uncovering the sources of thermal Hall effect in insulators has become an important issue. In the case of ferromagnetic insulators, it is well known that Dzyaloshinskii-Moriya (DM) interaction can induce magnon thermal Hall effect. Specifically, the DM vector parallel to the magnetization direction induces complex magnon hopping amplitudes, so that magnons act as if they feel Lorentz force. However, the DM vector which is orthogonal to the magnetization direction has hitherto been neglected as a possible source of magnon thermal Hall effect. This is because they play no role in the linear spin wave theory, an often invoked approximation when computing the magnon thermal Hall effect. Here, we challenge this expectation by presenting the self-consistent Schwinger-boson mean field study of two-dimensional magnets with ferromagnetic Heisenberg interaction and in-plane DM…
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