Lead zirconate titanate samples are used for their piezoelectric and ferroelectric properties in various types of micro-devices. Epitaxial layers of tetragonal perovskites have a tendency to relax by forming ferroelastic domains. The accommodation of the a/c/a/c polydomain structure on a flat substrate leads to nanoscale deformation gradients which locally influence the polarization by flexoelectric effect. Here, we investigated the deformation fields in epitaxial layers of Pb(Zr0.2Ti0.8)O3 grown on SrTiO3 substrates using transmission electron microscopy (TEM). We found that the deformation gradients depend on the domain walls inclination ( or to the substrate interface) of the successive domains and we describe three different a/c/a domai...
We study, on an atomic scale, the influence of a single dislocation in a SrTiO3 sublayer on the loca...
We study the complex ferroelastic/ferroelectric domain structure in the prototypical ferroelectric P...
International audienceStrain engineering aims to take advantage of the stress field imposed by subst...
Lead zirconate titanate samples are used for their piezoelectric and ferroelectric properties in var...
Ferroelectric materials exhibit a strong coupling between strain and electrical polarization. In epi...
A relation is established between the domain fraction, the domain inclination and the substrate-indu...
Epitaxial strain is a powerful tool to manipulate the properties of ferroelectric materials. But des...
Lead zirconate titanate (PZT) thin films have received much attention due to their excellent ferroel...
Epitaxial ferroelectric thin films of lead zirconium-titanium oxide, Pb(Zr0.53Ti0.47)O3 (PZT), were ...
Epitaxial strain has been widely used to modify the crystal and domain structure, and ultimately the...
Strain engineering enables modification of the properties of thin films using the stress from the su...
Typically, polarization and strain in ferroelectric materials are coupled, leading to the generally ...
Ferroelectric materials exhibit a strong coupling between strain and electrical polarization. In epi...
We study, on an atomic scale, the influence of a single dislocation in a SrTiO3 sublayer on the loca...
We study the complex ferroelastic/ferroelectric domain structure in the prototypical ferroelectric P...
International audienceStrain engineering aims to take advantage of the stress field imposed by subst...
Lead zirconate titanate samples are used for their piezoelectric and ferroelectric properties in var...
Ferroelectric materials exhibit a strong coupling between strain and electrical polarization. In epi...
A relation is established between the domain fraction, the domain inclination and the substrate-indu...
Epitaxial strain is a powerful tool to manipulate the properties of ferroelectric materials. But des...
Lead zirconate titanate (PZT) thin films have received much attention due to their excellent ferroel...
Epitaxial ferroelectric thin films of lead zirconium-titanium oxide, Pb(Zr0.53Ti0.47)O3 (PZT), were ...
Epitaxial strain has been widely used to modify the crystal and domain structure, and ultimately the...
Strain engineering enables modification of the properties of thin films using the stress from the su...
Typically, polarization and strain in ferroelectric materials are coupled, leading to the generally ...
Ferroelectric materials exhibit a strong coupling between strain and electrical polarization. In epi...
We study, on an atomic scale, the influence of a single dislocation in a SrTiO3 sublayer on the loca...
We study the complex ferroelastic/ferroelectric domain structure in the prototypical ferroelectric P...
International audienceStrain engineering aims to take advantage of the stress field imposed by subst...