Thermal conductivity in dielectric crystals is the result of the relaxation of lattice vibrations described by the phonon Boltzmann transport equation. Remarkably, an exact microscopic definition of the heat carriers and their relaxation times is still missing: Phonons, typically regarded as the relevant excitations for thermal transport, cannot be identified as the heat carriers when most scattering events conserve momentum and do not dissipate heat flux. This is the case for two-dimensional or layered materials at room temperature, or three-dimensional crystals at cryogenic temperatures. In this work, we show that the eigenvectors of the scattering matrix in the Boltzmann equation define collective phonon excitations, which are termed her...
We discuss recent advances in the microscopic simulations of thermal conductivity through the prism ...
Two different heat-transport mechanisms are discussed in solids. In crystals, heat carriers propagat...
Lattice vibration is the main microscopic mechanism for thermal transport in dielectric materials. T...
The thermal transport of a dielectric solid can be determined by means of the Boltzmann equation reg...
The thermal transport of a dielectric solid can be determined by means of the Boltzmann equation reg...
Heat conduction in dielectric crystals originates from the dynamics of atomic vibrations, whose evol...
Heat conduction in dielectric crystals originates from the dynamics of atomic vibrations, whose evol...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
The relaxation of a spatially sinusoidal temperature perturbation in a dielectric crystal at a tempe...
The thermal transport of a dielectric solid can be determined by means of the Boltzmann equation reg...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
We discuss recent advances in the microscopic simulations of thermal conductivity through the prism ...
Two different heat-transport mechanisms are discussed in solids. In crystals, heat carriers propagat...
Lattice vibration is the main microscopic mechanism for thermal transport in dielectric materials. T...
The thermal transport of a dielectric solid can be determined by means of the Boltzmann equation reg...
The thermal transport of a dielectric solid can be determined by means of the Boltzmann equation reg...
Heat conduction in dielectric crystals originates from the dynamics of atomic vibrations, whose evol...
Heat conduction in dielectric crystals originates from the dynamics of atomic vibrations, whose evol...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
As discussed in a previous paper [1], the thermal transport in dielectric solids can be obtained by ...
The relaxation of a spatially sinusoidal temperature perturbation in a dielectric crystal at a tempe...
The thermal transport of a dielectric solid can be determined by means of the Boltzmann equation reg...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
We discuss recent advances in the microscopic simulations of thermal conductivity through the prism ...
Two different heat-transport mechanisms are discussed in solids. In crystals, heat carriers propagat...
Lattice vibration is the main microscopic mechanism for thermal transport in dielectric materials. T...