The thermodynamic properties of materials are of great interest for both scientists and engineers. A large contribution to many properties stems from the vibrational motion of the atoms in the material. An understanding of the dynamics of the vibrating atoms is therefore important for many other areas as well, including, e.g., electronic and optical properties. Since many materials of particular technological interest are crystalline, the vibrations can be studied in the framework of lattice dynamics. One of the main challenges in lattice dynamics is to acquire the force constants that describe the atomic interactions. Using crystal symmetries it is possible to reduce and cast this problem to a linear regression problem. This approach has b...
While the vibrational thermodynamics of materials with small anharmonicity at low temperatures has ...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Thermal conductivity is a key parameter in designing high performance thermoelectric materials. A mu...
High-order force constant expansions can provide accurate representations of the potential energy su...
High-order force constant expansions can provide accurate representations of the potential energy su...
Molecular dynamics (MD) simulations calculate the trajectory of atoms as a function of time. Materia...
Abstract High-order force constant expansions can provide accurate representations of the potential...
Despite vibrational properties being critical for the ab initio prediction of finite-temperature sta...
High-order force constant expansions can provide accurate representations of the potential energy su...
Phononic properties are commonly studied by calculating force constants using the density functional...
Funding Information: Funding from the Knut and Alice Wallenberg Foundation (2014.0226), the Swedish ...
In solids and molecules, atoms vibrate about their respective equilibrium positions at finite temper...
Phononic properties are commonly studied by calculating force constants using the density functional...
The program PHON calculates force constant matrices and phonon frequencies in crystals. From the fre...
The program PHON calculates force constant matrices and phonon frequencies in crystals. From the fre...
While the vibrational thermodynamics of materials with small anharmonicity at low temperatures has ...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Thermal conductivity is a key parameter in designing high performance thermoelectric materials. A mu...
High-order force constant expansions can provide accurate representations of the potential energy su...
High-order force constant expansions can provide accurate representations of the potential energy su...
Molecular dynamics (MD) simulations calculate the trajectory of atoms as a function of time. Materia...
Abstract High-order force constant expansions can provide accurate representations of the potential...
Despite vibrational properties being critical for the ab initio prediction of finite-temperature sta...
High-order force constant expansions can provide accurate representations of the potential energy su...
Phononic properties are commonly studied by calculating force constants using the density functional...
Funding Information: Funding from the Knut and Alice Wallenberg Foundation (2014.0226), the Swedish ...
In solids and molecules, atoms vibrate about their respective equilibrium positions at finite temper...
Phononic properties are commonly studied by calculating force constants using the density functional...
The program PHON calculates force constant matrices and phonon frequencies in crystals. From the fre...
The program PHON calculates force constant matrices and phonon frequencies in crystals. From the fre...
While the vibrational thermodynamics of materials with small anharmonicity at low temperatures has ...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Thermal conductivity is a key parameter in designing high performance thermoelectric materials. A mu...