Chiral phase transition and thermal Hall effect in an anisotropic spin model on the kagome lattice

We present a study of the thermal Hall effect in the extended Heisenberg model with XXZ anisotropy in the kagome lattice. This model has the particularity that, in the classical case, and for a broad region in parameter space, an external magnetic field induces a chiral symmetry breaking: the ground...

Descripción completa

Detalles Bibliográficos
Autores principales: Gómez Albarracín, Flavia Alejandra, Rosales, Héctor Diego, Pujol, Pierre
Formato: Articulo Preprint
Lenguaje:Inglés
Publicado: 2021
Materias:
Acceso en línea:http://sedici.unlp.edu.ar/handle/10915/125176
Aporte de:
id I19-R120-10915-125176
record_format dspace
institution Universidad Nacional de La Plata
institution_str I-19
repository_str R-120
collection SEDICI (UNLP)
language Inglés
topic Física
Physics
Phase transition
Lattice (group)
Heisenberg model
Condensed matter physics
Spin model
Order (ring theory)
Thermal hall effect
Chiral symmetry breaking
Ground state
spellingShingle Física
Physics
Phase transition
Lattice (group)
Heisenberg model
Condensed matter physics
Spin model
Order (ring theory)
Thermal hall effect
Chiral symmetry breaking
Ground state
Gómez Albarracín, Flavia Alejandra
Rosales, Héctor Diego
Pujol, Pierre
Chiral phase transition and thermal Hall effect in an anisotropic spin model on the kagome lattice
topic_facet Física
Physics
Phase transition
Lattice (group)
Heisenberg model
Condensed matter physics
Spin model
Order (ring theory)
Thermal hall effect
Chiral symmetry breaking
Ground state
description We present a study of the thermal Hall effect in the extended Heisenberg model with XXZ anisotropy in the kagome lattice. This model has the particularity that, in the classical case, and for a broad region in parameter space, an external magnetic field induces a chiral symmetry breaking: the ground state is a doubly degenerate q=0 order with either positive or negative net chirality. Here, we focus on the effect of this chiral phase transition in the thermal Hall conductivity using linear-spin-waves theory. We explore the topology and calculate the Chern numbers of the magnonic bands, obtaining a variety of topological phase transitions. We also compute the magnonic effect to the critical temperature associated with the chiral phase transition (T<sub>c</sub><sup>SW</sup>). Our main result is that, the thermal Hall conductivity, which is null for T>T<sub>c</sub><sup>SW</sup>, becomes nonzero as a consequence of the spontaneous chiral symmetry breaking at low temperatures. Therefore, we present a simple model where it is possible to ``switch'' on/off the thermal transport properties introducing a magnetic field and heating or cooling the system.
format Articulo
Preprint
author Gómez Albarracín, Flavia Alejandra
Rosales, Héctor Diego
Pujol, Pierre
author_facet Gómez Albarracín, Flavia Alejandra
Rosales, Héctor Diego
Pujol, Pierre
author_sort Gómez Albarracín, Flavia Alejandra
title Chiral phase transition and thermal Hall effect in an anisotropic spin model on the kagome lattice
title_short Chiral phase transition and thermal Hall effect in an anisotropic spin model on the kagome lattice
title_full Chiral phase transition and thermal Hall effect in an anisotropic spin model on the kagome lattice
title_fullStr Chiral phase transition and thermal Hall effect in an anisotropic spin model on the kagome lattice
title_full_unstemmed Chiral phase transition and thermal Hall effect in an anisotropic spin model on the kagome lattice
title_sort chiral phase transition and thermal hall effect in an anisotropic spin model on the kagome lattice
publishDate 2021
url http://sedici.unlp.edu.ar/handle/10915/125176
work_keys_str_mv AT gomezalbarracinflaviaalejandra chiralphasetransitionandthermalhalleffectinananisotropicspinmodelonthekagomelattice
AT rosaleshectordiego chiralphasetransitionandthermalhalleffectinananisotropicspinmodelonthekagomelattice
AT pujolpierre chiralphasetransitionandthermalhalleffectinananisotropicspinmodelonthekagomelattice
bdutipo_str Repositorios
_version_ 1764820451343728642