Background: Hafnium Dioxide (HfO2) represents a hopeful material for gate dielectric thin films in the field of semiconductor integrated circuits. For HfO2, several crystal structures are possible, with different properties which can be difficult to describe in detail from an experimental point of view. In this study, a detailed computational approach has been shown to present a complete analysis of four HfO2 polymorphs, outlining the intrinsic properties of each phase on the basis of atomistic displacements. Methods: Density functional theory (DFT) based methods have been used to accurately describe the chemical physical properties of the polymorphs. Corrective Hubbard (U) semi-empirical terms have been added to exchange correlation energy...
The electronic structure, vacancy symmetry, defect levels, ferroelectric phases, and interface prope...
The atomic structure of amorphous and crystalline hafnium oxide ͑HfO 2 ͒ films was examined using x-...
We have performed first-principles calculations of the structural, electronic, mechanical, and vibra...
Background: Hafnium Dioxide (HfO2) represents a hopeful material for gate dielectric thin films in t...
HfO2 can assume different crystalline structures, such as monoclinic, orthorhombic, and cubic polymo...
Density functional theory (DFT) is a very successful technique to calculating the properties of many...
HfO2 shows different polymorphs, including monoclinic and orthorhombic ones, that exhibit singular p...
We have carried out a systematic theoretical study of the surfaces of monoclinic hafnia (Hf O2) usin...
The electronic structure of crystalline ZrO2 and HfO2 in the cubic, tetragonal, and monoclinic phase...
Density functional theory (DFT) based methods have been used to describe the electronic, optical, an...
A systematic first-principles study using density functional theory was performed on dopants in HfO2...
We present ab initio density-functional theory (DFT) calculations of the structure and stability of ...
Zirconia (zirconium dioxide) and hafnia (hafnium dioxide) are binary oxides used in a range of appli...
In pure HfO2, only P21/c monoclinic phase was known to exist from previous investigations and there ...
In the last four decades the semiconductor industry has seen the success of continuously improving t...
The electronic structure, vacancy symmetry, defect levels, ferroelectric phases, and interface prope...
The atomic structure of amorphous and crystalline hafnium oxide ͑HfO 2 ͒ films was examined using x-...
We have performed first-principles calculations of the structural, electronic, mechanical, and vibra...
Background: Hafnium Dioxide (HfO2) represents a hopeful material for gate dielectric thin films in t...
HfO2 can assume different crystalline structures, such as monoclinic, orthorhombic, and cubic polymo...
Density functional theory (DFT) is a very successful technique to calculating the properties of many...
HfO2 shows different polymorphs, including monoclinic and orthorhombic ones, that exhibit singular p...
We have carried out a systematic theoretical study of the surfaces of monoclinic hafnia (Hf O2) usin...
The electronic structure of crystalline ZrO2 and HfO2 in the cubic, tetragonal, and monoclinic phase...
Density functional theory (DFT) based methods have been used to describe the electronic, optical, an...
A systematic first-principles study using density functional theory was performed on dopants in HfO2...
We present ab initio density-functional theory (DFT) calculations of the structure and stability of ...
Zirconia (zirconium dioxide) and hafnia (hafnium dioxide) are binary oxides used in a range of appli...
In pure HfO2, only P21/c monoclinic phase was known to exist from previous investigations and there ...
In the last four decades the semiconductor industry has seen the success of continuously improving t...
The electronic structure, vacancy symmetry, defect levels, ferroelectric phases, and interface prope...
The atomic structure of amorphous and crystalline hafnium oxide ͑HfO 2 ͒ films was examined using x-...
We have performed first-principles calculations of the structural, electronic, mechanical, and vibra...