This article reviews the current status of lattice-dynamical calculations in crystals, using density-functional perturbation theory, with emphasis on the plane-wave pseudopotential method. Several specialized topics are treated, including the implementation for metals, the calculation of the response to macroscopic electric fields and their relevance to long-wavelength vibrations in polar materials, the response to strain deformations, and higher-order responses. The success of this methodology is demonstrated with a number of applications existing in the literature
ABSTRACT: Recent developments in density functional theory (DFT) methods applicable to studies of la...
Density-functional perturbation theory for lattice dynamics is presented in a general framework whic...
Density-functional perturbation theory for lattice dynamics is presented in a general framework whic...
This article reviews the current status of lattice-dynamical calculations in crystals, using density...
This article reviews the current status of lattice-dynamical calculations in crystals, using density...
Solids consisting of periodic lattice structures exhibit vibrational modes of their atomic nuclei. I...
The crystal lattice is never rigid. Due to temperature, external fields or pressure, the nuclei vibr...
Phonons are quantized vibrations of a crystal lattice that play a crucial role in understanding many...
Phonons are quantized vibrations of a crystal lattice that play a crucial role in understanding many...
In this work, we discuss two approaches to calculate phonon spectra of crystals within the all-elect...
In this work, we discuss two approaches to calculate phonon spectra of crystals within the all-elect...
We present some applications of a first-principles approach to the study of the vibrational properti...
The density-functional perturbation theory approach to lattice-dynamical calculations is extended to...
We generalize density-functional perturbation theory for lattice dynamics to Vanderbilt's ultrasoft ...
The diffusion of large databases collecting different kind of material properties from high-throughp...
ABSTRACT: Recent developments in density functional theory (DFT) methods applicable to studies of la...
Density-functional perturbation theory for lattice dynamics is presented in a general framework whic...
Density-functional perturbation theory for lattice dynamics is presented in a general framework whic...
This article reviews the current status of lattice-dynamical calculations in crystals, using density...
This article reviews the current status of lattice-dynamical calculations in crystals, using density...
Solids consisting of periodic lattice structures exhibit vibrational modes of their atomic nuclei. I...
The crystal lattice is never rigid. Due to temperature, external fields or pressure, the nuclei vibr...
Phonons are quantized vibrations of a crystal lattice that play a crucial role in understanding many...
Phonons are quantized vibrations of a crystal lattice that play a crucial role in understanding many...
In this work, we discuss two approaches to calculate phonon spectra of crystals within the all-elect...
In this work, we discuss two approaches to calculate phonon spectra of crystals within the all-elect...
We present some applications of a first-principles approach to the study of the vibrational properti...
The density-functional perturbation theory approach to lattice-dynamical calculations is extended to...
We generalize density-functional perturbation theory for lattice dynamics to Vanderbilt's ultrasoft ...
The diffusion of large databases collecting different kind of material properties from high-throughp...
ABSTRACT: Recent developments in density functional theory (DFT) methods applicable to studies of la...
Density-functional perturbation theory for lattice dynamics is presented in a general framework whic...
Density-functional perturbation theory for lattice dynamics is presented in a general framework whic...