Effective field theory and thermal Hall effect of magnons in square-lattice antiferromagnets
Masataka Kawano

TL;DR
This paper develops an effective field theory for magnons in square-lattice antiferromagnets, clarifying the conditions under which a thermal Hall effect arises due to gauge fields and pseudospin interactions.
Contribution
It introduces a systematic effective field theory framework that explains the emergence of thermal Hall effects in square-lattice antiferromagnets, linking gauge fields to magnon trajectories.
Findings
Magnons are described by an SU(2) gauge field coupled to pseudospins.
The pseudospin-dependent magnetic field bends magnon trajectories, leading to thermal Hall effect.
The framework classifies magnetic orders based on the presence of the thermal Hall effect.
Abstract
Thermal Hall transport has emerged as a powerful probe of neutral quasiparticles and associated gauge fields in insulating materials. Although the emergence of a thermal Hall effect is known to be sensitive to lattice geometry and gauge structures, an intuitive understanding of the conditions for its emergence remains limited, especially for edge-shared lattice geometries such as square and triangular lattices. Here, we develop an effective field theory of magnons in square-lattice antiferromagnets to establish the intuitive picture that elucidates the conditions for a finite thermal Hall response. By constructing an effective field theory from a spin model on the square lattice, we show that its low-energy excitations can be described by magnons with an effective SU(2) gauge field and Zeeman field that couple to magnon's pseudospins, which reflect the two-sublattice degrees of freedom…
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Taxonomy
TopicsMagnetic properties of thin films · Physics of Superconductivity and Magnetism · Magnetic and transport properties of perovskites and related materials
