In semiconductors almost all heat is conducted by phonons (lattice vibrations), which is limited by their quasi-particle lifetimes. Phonon-phonon interactions represent scattering mechanisms that produce thermal resistance. In thermoelectric materials, this resistance due to anharmonicity should be maximised for optimal performance. We use a first-principles lattice-dynamics approach to explore the changes in lattice dynamics across an isostructural series where the average atomic mass is conserved: ZnS to CuGaS2 to Cu2ZnGeS4. Our results demonstrate an enhancement of phonon interactions in the multernary materials and confirm that lattice thermal conductivity can be controlled independently of the average mass and local coordination enviro...
Low thermal conductivity is favorable for preserving the temperature gradient between the two ends o...
Recent experimental characterizations on thermoelectric materials revealed novel phenomena that requ...
The knowledge of lattice thermal conductivity of materials under realistic conditions is vitally imp...
In semiconductors almost all heat is conducted by phonons (lattice vibrations), which is limited by ...
In semiconductors almost all heat is conducted by phonons (lattice vibrations), which is limited by ...
Thermoelectric materials, which enable direct conversion between thermal and electrical energy, prov...
Recent work has demonstrated that nanostructuring of a semiconductor material to form a phononic cry...
Phonon surface scattering has been at the core of heat transport engineering in nanoscale devices. H...
We employ first principles based density functional theory calculations to explore the lattice dynam...
In this study, using the first-principles based atomistic simulations, we address tuning of the atom...
First-principles prediction of lattice thermal conductivity κ(L) of strongly anharmonic crystals is ...
The layered semiconductor SnSe is one of the highest-performing thermoelectric materials known. We d...
The layered semiconductor SnSe is one of the highest-performing thermoelectric materials known. We d...
Thermal conductivity is a key parameter in designing high performance thermoelectric materials. A mu...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Low thermal conductivity is favorable for preserving the temperature gradient between the two ends o...
Recent experimental characterizations on thermoelectric materials revealed novel phenomena that requ...
The knowledge of lattice thermal conductivity of materials under realistic conditions is vitally imp...
In semiconductors almost all heat is conducted by phonons (lattice vibrations), which is limited by ...
In semiconductors almost all heat is conducted by phonons (lattice vibrations), which is limited by ...
Thermoelectric materials, which enable direct conversion between thermal and electrical energy, prov...
Recent work has demonstrated that nanostructuring of a semiconductor material to form a phononic cry...
Phonon surface scattering has been at the core of heat transport engineering in nanoscale devices. H...
We employ first principles based density functional theory calculations to explore the lattice dynam...
In this study, using the first-principles based atomistic simulations, we address tuning of the atom...
First-principles prediction of lattice thermal conductivity κ(L) of strongly anharmonic crystals is ...
The layered semiconductor SnSe is one of the highest-performing thermoelectric materials known. We d...
The layered semiconductor SnSe is one of the highest-performing thermoelectric materials known. We d...
Thermal conductivity is a key parameter in designing high performance thermoelectric materials. A mu...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Low thermal conductivity is favorable for preserving the temperature gradient between the two ends o...
Recent experimental characterizations on thermoelectric materials revealed novel phenomena that requ...
The knowledge of lattice thermal conductivity of materials under realistic conditions is vitally imp...