We consider the Haldane model, a 2D topological insulator whose phase is defined by the Chern number. We study its phases as the temperature varies by means of the Uhlmann number, a finite temperature generalization of the Chern number. Because of the relation between the Uhlmann number and the dynamical transverse conductivity of the system, we also evaluate the conductivity of the model. This analysis does not show any sign of a phase transition induced by the temperature, nonetheless it gives a better understanding of the fate of the topological phase with the increase of the temperature, and it provides another example of the usefulness of the Uhlmann number as a novel tool to study topological properties at finite temperature
The Haldane model on a honeycomb lattice is a paradigmatic example of a system featuring quantized H...
Topological insulators (superconductors) are materials that host symmetry-protected metallic edge st...
This article is available under the terms of the Creative Commons Attribution 3.0 License.We present...
We consider the Haldane model, a 2D topological insulator whose phase is defined by the Chern number...
We have applied the recently developed theory of topological Uhlmann numbers to a representative mod...
Thermal noise can destroy topological insulators (TI). However, we demonstrate how TIs can be made s...
We construct a topological invariant that classifies density matrices of symmetry-protected topologi...
We introduce the Uhlmann geometric phase as a tool to characterize symmetry-protected topological ph...
We study finite-temperature topological properties of the Kitaev’s spin-honeycomb model in the vorte...
The Uhlmann phase, which reflects the holonomy as the purified state of a density matrix traverses a...
The Chern number is a topological invariant which characterizes Chern insulators in the translationa...
For a long time, it was believed that the Ginzburg-Landau formalism was able to classify all differe...
We study the Haldane-Hubbard model by exact renormalization group techniques. We analytically constr...
We study topological properties and the topological phase transitions therein for a semi-Dirac Halda...
We study the Haldane model with nearest–neighbor interactions. This model is physically motivated by...
The Haldane model on a honeycomb lattice is a paradigmatic example of a system featuring quantized H...
Topological insulators (superconductors) are materials that host symmetry-protected metallic edge st...
This article is available under the terms of the Creative Commons Attribution 3.0 License.We present...
We consider the Haldane model, a 2D topological insulator whose phase is defined by the Chern number...
We have applied the recently developed theory of topological Uhlmann numbers to a representative mod...
Thermal noise can destroy topological insulators (TI). However, we demonstrate how TIs can be made s...
We construct a topological invariant that classifies density matrices of symmetry-protected topologi...
We introduce the Uhlmann geometric phase as a tool to characterize symmetry-protected topological ph...
We study finite-temperature topological properties of the Kitaev’s spin-honeycomb model in the vorte...
The Uhlmann phase, which reflects the holonomy as the purified state of a density matrix traverses a...
The Chern number is a topological invariant which characterizes Chern insulators in the translationa...
For a long time, it was believed that the Ginzburg-Landau formalism was able to classify all differe...
We study the Haldane-Hubbard model by exact renormalization group techniques. We analytically constr...
We study topological properties and the topological phase transitions therein for a semi-Dirac Halda...
We study the Haldane model with nearest–neighbor interactions. This model is physically motivated by...
The Haldane model on a honeycomb lattice is a paradigmatic example of a system featuring quantized H...
Topological insulators (superconductors) are materials that host symmetry-protected metallic edge st...
This article is available under the terms of the Creative Commons Attribution 3.0 License.We present...