A novel atomistic effective Hamiltonian scheme, incorporating an original and simple bilinear energetic coupling, is developed and used to investigate the temperature dependent physical properties of the prototype antiferroelectric PbZrO3 (PZO) system. This scheme reproduces very well the known experimental hallmarks of the complex Pbam orthorhombic phase at low temperatures and the cubic paraelectric state of Pm 3m symmetry at high temperatures. Unexpectedly, it further predicts a novel intermediate state also of Pbam symmetry, but in which anti-phase oxygen octahedral tiltings have vanished with respect to the Pbam ground state. Interestingly, such new state exhibits a large dielectric response and thermal expansion that remarkably agree ...
We report the existence of a low-temperature polar phase in PbZrO3 below 270 K. The temperature depe...
An effective Hamiltonian for the antiferroelectric transition in PbZrO3 is constructed from first-pr...
The ground-stale structure of BaZrO3 is experimentally known to be cubic down to absolute zero. Howe...
International audienceA novel atomistic effective Hamiltonian scheme, incorporating an original and ...
peer reviewedUsing first-principles calculations, we investigate the structural and vibrational prop...
The aim of this dissertation is the investigation of the static and dynamical properties of the comp...
Lead zirconate (PbZrO3) is considered the prototypical antiferroelectric material with an antipolar ...
The prototypical antiferroelectric PbZrO3 has several unsettled questions, such as the nature of the...
International audienceFirst-principles calculations are performed to investigate several low-enthalp...
Whereas low-temperature ferroelectrics have a well understood ordered spatial dipole arrangement, th...
The phenomenology of Pb(B,B')O3 perovskite-based relaxor ferroelectrics (RFE) is reviewed, with emph...
Antiferroelectric materials, where the transition between antipolar and polar phase is controlled by...
The main mechanism of properties enhancement in the morphotropic phase boundary region separating te...
Lead zirconate (PbZrO3) is considered the prototypical antiferroelectric material with an antipolar ...
We report the existence of a low-temperature polar phase in PbZrO3 below 270 K. The temperature depe...
An effective Hamiltonian for the antiferroelectric transition in PbZrO3 is constructed from first-pr...
The ground-stale structure of BaZrO3 is experimentally known to be cubic down to absolute zero. Howe...
International audienceA novel atomistic effective Hamiltonian scheme, incorporating an original and ...
peer reviewedUsing first-principles calculations, we investigate the structural and vibrational prop...
The aim of this dissertation is the investigation of the static and dynamical properties of the comp...
Lead zirconate (PbZrO3) is considered the prototypical antiferroelectric material with an antipolar ...
The prototypical antiferroelectric PbZrO3 has several unsettled questions, such as the nature of the...
International audienceFirst-principles calculations are performed to investigate several low-enthalp...
Whereas low-temperature ferroelectrics have a well understood ordered spatial dipole arrangement, th...
The phenomenology of Pb(B,B')O3 perovskite-based relaxor ferroelectrics (RFE) is reviewed, with emph...
Antiferroelectric materials, where the transition between antipolar and polar phase is controlled by...
The main mechanism of properties enhancement in the morphotropic phase boundary region separating te...
Lead zirconate (PbZrO3) is considered the prototypical antiferroelectric material with an antipolar ...
We report the existence of a low-temperature polar phase in PbZrO3 below 270 K. The temperature depe...
An effective Hamiltonian for the antiferroelectric transition in PbZrO3 is constructed from first-pr...
The ground-stale structure of BaZrO3 is experimentally known to be cubic down to absolute zero. Howe...