Tailoring of ferromagnetic Pr0.85Ca0.15MnO3/ferroelectric Ba0.6Sr0.4TiO3 superlattices for multiferroic properties
arXiv:cond-mat/0409182 · doi:10.1063/1.1811800
Abstract
Superlattices composed of ferromagnetic Pr0.85Ca0.15MnO3 and ferroelectric Ba0.6Sr0.4TiO3 layers were fabricated on (100) SrTiO3 substrates by a pulsed-laser deposition method. The capacitance and resistive parts of the samples were analyzed from the complex impedance measurements, performed on the samples using a special experimental set-up. The superlattice with larger ferroelectric thickness shows unique characteristics which are not present in the parent ferromagnetic thin film. The superlattice show both ferromagnetic and ferroelectric transitions which is an evidence for the coexistence of both the properties. The high magnetoresistance (40 % at 80K) shown by the superlattice can be attributed to the coupling between ferromagnetic and ferroelectric layers, i.e, to the magnetoelectric effect.
To be published in App. Phys. Lett
Cited by in corpus (11)
- Multifunctional Magnetoelectric Materials for Device Applications
- Magnetocapacitance effect in perovskite-superlattice based multiferroics
- The role of ferroelectric-ferromagnetic layers on the properties of superlattice-based multiferroics
- Correlation between structure and properties in multiferroic LaCaMnO/BaTiO superlattices
- Structure determination of a brownmillerite Ca2Co2O5 thin film by Precession Electron Diffraction
- Effect of ferroelectric layers on the magnetocapacitance properties of superlattices-based oxide multiferroics
- Investigation of biferroic properties in La0.6Sr0.4MnO3/0.7 Pb(Mg1/3Nb2/3)O3 0.3 PbTiO3 epitaxial bilayered heterostructures
- Realization of biferroic properties in La0.6Sr0.4MnO3 0.7Pb(Mg0.33Nb0.67)O3 0.3(PbTiO3) epitaxial superlattices
- The magnetotransport properties of La0.7Sr0.3MnO3/BaTiO3 superlattices grown by pulsed laser deposition technique
- Stabilization and functional properties of La3NiAlMnO9 and La3CoAlMnO9 magnetoelectric triple perovskites
- Modulation of the ferromagnetic insulating phase in Pr0.8Ca0.2MnO3 by Co substitution