Large magnetoelectric coupling in nanoscale BiFeO from direct electrical measurements
arXiv:1409.5859 · doi:10.1103/PhysRevB.90.104402
Abstract
We report the results of direct measurement of remanent hysteresis loops on nanochains of BiFeO at room temperature under zero and 20 kOe magnetic field. We noticed a suppression of remanent polarization by nearly 40\% under the magnetic field. The powder neutron diffraction data reveal significant ion displacements under a magnetic field which seems to be the origin of the suppression of polarization. The isolated nanoparticles, comprising the chains, exhibit evolution of ferroelectric domains under dc electric field and complete 180 switching in switching-spectroscopy piezoresponse force microscopy. They also exhibit stronger ferromagnetism with nearly an order of magnitude higher saturation magnetization than that of the bulk sample. These results show that the nanoscale BiFeO exhibits coexistence of ferroelectric and ferromagnetic order and a strong magnetoelectric multiferroic coupling at room temperature comparable to what some of the type-II multiferroics show at a very low temperature.
7 pages with 5 figures, published in Phys. Rev. B
References in corpus (5)
- Weak ferromagnetism and magnetoelectric coupling in bismuth ferrite
- Electric-field-induced spin-flop in BiFeO3 single crystals at room-temperature
- Spin-driven ferroelectricity and possible antiferroelectricity in triangular lattice antiferromagnets ACrO2 (A = Cu, Ag, Li, or Na)
- Particle size dependence of magnetization and non-centrosymmetry in nanoscale BiFeO3
- Spontaneous exchange bias in a nanocomposite of BiFeO-BiFeO