A combination of experiments and ab initio quantum-mechanical calculations has been applied to examine electronic, structural, and hyperfine interactions in pure and Ta-doped zirconium dioxide in its monoclinic phase (m-ZrO₂). From the theoretical point of view, the full-potential linear augmented plane wave plus local orbital (APW + lo) method was applied to treat the electronic structure of the doped system including the atomic relaxations introduced by the impurities in the host in a fully self-consistent way using a supercell approach. Different charge states of the Ta impurity were considered in the study and its effects on the electronic, structural, and hyperfine properties are discussed. Our results suggest that two different charge...
Density-functional theory calculations are performed to investigate the electronic and vibrational d...
Some crystallographic considerations on the novel orthorhombic ZrO2(o-ZrO2) stabilized at ambient co...
We present a systematic study of isolated hydrogen in diverse forms of ZrO2 (zirconia), both undoped...
The role of divalent dopant cations such as Ca and Mg in phase stabilization of ZrO2 has been demons...
The atomic and electronic structures of zirconia are calculated within density functional theory, an...
A detailed theoretical first-principles study of structural, electronic, and hyperfine properties at...
We report first principles calculations of the electronic and elastic properties of yttriastabilized ...
In this work we present an experimental and theoretical study from first-principles of the structura...
Abstract The electronic structures and optical properties of the monoclinic ZrO2 (m-ZrO2) are invest...
The electronic structure of crystalline ZrO2 and HfO2 in the cubic, tetragonal, and monoclinic phase...
We performed plane wave density functional theory (DFT) calculations of formation energies, relaxed ...
First-principles electronic band structure investigations of monoclinic, tetragonal, and cubic ZrO2 ...
Density-functional theory calculations are performed to investigate the electronic and vibrational d...
Some crystallographic considerations on the novel orthorhombic ZrO2(o-ZrO2) stabilized at ambient co...
We present a systematic study of isolated hydrogen in diverse forms of ZrO2 (zirconia), both undoped...
The role of divalent dopant cations such as Ca and Mg in phase stabilization of ZrO2 has been demons...
The atomic and electronic structures of zirconia are calculated within density functional theory, an...
A detailed theoretical first-principles study of structural, electronic, and hyperfine properties at...
We report first principles calculations of the electronic and elastic properties of yttriastabilized ...
In this work we present an experimental and theoretical study from first-principles of the structura...
Abstract The electronic structures and optical properties of the monoclinic ZrO2 (m-ZrO2) are invest...
The electronic structure of crystalline ZrO2 and HfO2 in the cubic, tetragonal, and monoclinic phase...
We performed plane wave density functional theory (DFT) calculations of formation energies, relaxed ...
First-principles electronic band structure investigations of monoclinic, tetragonal, and cubic ZrO2 ...
Density-functional theory calculations are performed to investigate the electronic and vibrational d...
Some crystallographic considerations on the novel orthorhombic ZrO2(o-ZrO2) stabilized at ambient co...
We present a systematic study of isolated hydrogen in diverse forms of ZrO2 (zirconia), both undoped...