Chern insulators in two and three dimensions: A global perspective

Fuente: arXiv
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Auteurs principaux: Kattan, Jason G., Sipe, J. E.
Format: Preprint
Publié: 2025
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author Kattan, Jason G.
Sipe, J. E.
author_facet Kattan, Jason G.
Sipe, J. E.
contents We introduce a second-quantized field theory for Chern insulators in which the Hamiltonian features a static vector potential that has the periodicity of the crystal's lattice and spontaneously breaks time-reversal symmetry in the system's ground state. Such a vector potential generates a magnetic field at the microscopic level that may be thought of as arising from local moments associated with one or more magnetic ions in each unit cell. Considering spinor electrons, we study the Chern invariants characterizing the topology of the occupied valence bands of Chern insulators in both two and three dimensions - the Chern number and the Chern vector, respectively - and we derive novel expressions for these topological invariants that are globally defined across the Brillouin zone and involve the full band structure of the system. We also study the long-wavelength response of a Chern insulator to electromagnetic fields at finite frequency, generalizing the quantum anomalous Hall effect in the static limit to the optical regime.
format Preprint
id arxiv_https___arxiv_org_abs_2506_04466
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Chern insulators in two and three dimensions: A global perspective
Kattan, Jason G.
Sipe, J. E.
Mesoscale and Nanoscale Physics
We introduce a second-quantized field theory for Chern insulators in which the Hamiltonian features a static vector potential that has the periodicity of the crystal's lattice and spontaneously breaks time-reversal symmetry in the system's ground state. Such a vector potential generates a magnetic field at the microscopic level that may be thought of as arising from local moments associated with one or more magnetic ions in each unit cell. Considering spinor electrons, we study the Chern invariants characterizing the topology of the occupied valence bands of Chern insulators in both two and three dimensions - the Chern number and the Chern vector, respectively - and we derive novel expressions for these topological invariants that are globally defined across the Brillouin zone and involve the full band structure of the system. We also study the long-wavelength response of a Chern insulator to electromagnetic fields at finite frequency, generalizing the quantum anomalous Hall effect in the static limit to the optical regime.
title Chern insulators in two and three dimensions: A global perspective
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2506.04466