Unusual ferroelectric and magnetic phases in multiferroic 2H-BaMnO ceramics
arXiv:1705.02143 · doi:10.1103/PhysRevB.95.174103
Abstract
The structural phase transition in hexagonal BaMnO occurring at =130 K was studied in ceramic samples using electron and X-ray diffraction, second harmonic generation as well as by dielectric and lattice dynamic spectroscopies. The low-temperature phase (space group ) is ferroelectric with a triplicated unit cell. The phase transition is driven by an optical soft mode from the Brillouin-zone boundary []; this mode activates in infrared and Raman spectra below and it hardens according to the Cochran law. Upon cooling below , the permittivity exhibits an unusual linear increase with temperature; below 60 K, in turn, a frequency-dependent decrease is observed, which can be explained by slowing-down of ferroelectric domain wall motions. Based on our data we could not distinguish whether the high-temperature phase is paraelectric or polar (space groups or , respectively). Both variants of the phase transition to the ferroelectric phase are discussed based on the Landau theory. Electron paramagnetic resonance and magnetic susceptibility measurements reveal an onset of one-dimensional antiferromagnetic ordering below which develops fully near 140 K and, below , it transforms into a three-dimensional antiferromagnetic order.
14 pages, 10 figures, Phys. Rev. B, in press