An atomic structure-based model for high-temperature lattice conductivity is developed for both compact crystals and cage-bridge crystals. For compact crystals, where long-range acoustic phonons dominate, the Debye temperature TD and Grüneisen parameter γ are estimated using interatomic potentials to arrive at the lattice conductivity relation. Under the assumption of homogeneous deformation, TD is estimated according to a simplified force constant matrix and a phenomenological combinative rule for force constants, which is applicable to an arbitrary pair of interacting atoms. Also, γ is estimated from a general Lennard-Jones potential form and the combination of the bonds. The results predicted by the model are in close agreement with the ...
Optimal regulation of lattice thermal conductivity in low-dimensional materials is fundamental to ob...
Contributions of low-frequency longitudinal phonons to the lattice thermal conductivity are estimate...
The discovery of novel materials with low thermal conductivity is paramount to improving the efficie...
An atomic structure-based model for high-temperature lattice conductivity is developed for both comp...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Atomic-level thermal transport in compact, layered, linked-cage, and filled-cage crystals is investi...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Recent work has demonstrated that nanostructuring of a semiconductor material to form a phononic cry...
Thermal conductivity is a key parameter in designing high performance thermoelectric materials. A mu...
The theory of anharmonic three-phonon interactions predicts an expression for the mean free path of ...
An analytical treatment of decomposition of the phonon thermal conductivity of a crystal with a mona...
We discuss recent advances in the microscopic simulations of thermal conductivity through the prism ...
Abstract: Lattice thermal conductivity (kappa(L)) is of great scientific interest for the developmen...
First-principles prediction of lattice thermal conductivity κ(L) of strongly anharmonic crystals is ...
A new structure-property relationship is discussed which links atomic displacement parameters (ADPs)...
Optimal regulation of lattice thermal conductivity in low-dimensional materials is fundamental to ob...
Contributions of low-frequency longitudinal phonons to the lattice thermal conductivity are estimate...
The discovery of novel materials with low thermal conductivity is paramount to improving the efficie...
An atomic structure-based model for high-temperature lattice conductivity is developed for both comp...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Atomic-level thermal transport in compact, layered, linked-cage, and filled-cage crystals is investi...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Recent work has demonstrated that nanostructuring of a semiconductor material to form a phononic cry...
Thermal conductivity is a key parameter in designing high performance thermoelectric materials. A mu...
The theory of anharmonic three-phonon interactions predicts an expression for the mean free path of ...
An analytical treatment of decomposition of the phonon thermal conductivity of a crystal with a mona...
We discuss recent advances in the microscopic simulations of thermal conductivity through the prism ...
Abstract: Lattice thermal conductivity (kappa(L)) is of great scientific interest for the developmen...
First-principles prediction of lattice thermal conductivity κ(L) of strongly anharmonic crystals is ...
A new structure-property relationship is discussed which links atomic displacement parameters (ADPs)...
Optimal regulation of lattice thermal conductivity in low-dimensional materials is fundamental to ob...
Contributions of low-frequency longitudinal phonons to the lattice thermal conductivity are estimate...
The discovery of novel materials with low thermal conductivity is paramount to improving the efficie...