Magnetic ground state and magnon-phonon interaction in multiferroic h-YMnO<sub>3</sub>
ORAL
Abstract
Inelastic neutron scattering has been used to study the magneto-elastic excitations in the multiferroic manganite hexagonal YMnO3. An avoided crossing is found between magnon and phonon modes close to the Brillouin zone boundary. Neutron polarization analysis reveals that this mode has mixed magnon-phonon character. An external magnetic field along the c-axis is observed to cause a linear field-induced splitting of one of the spin wave branches. A theoretical description is performed, using a Heisenberg model of localized spins, acoustic phonon modes and a magneto-elastic coupling via the single-ion magnetostriction. The model quantitatively reproduces the dispersion and intensities of all modes in the full Brillouin zone, describes the observed magnon-phonon hybridized modes, and quantifies the magneto-elastic coupling. The combined information, including the field-induced magnon splitting, allows us to exclude several of the earlier proposed models and point to a magnetic ground state, of the P6'3c'm symmetry, and provides an effective dynamic model relevant for the multiferroic hexagonal manganites.
*The project was supported by the Danish Research Council for Nature and Universe, by the Siemens Foundation and Lundbeckfond fellowship (grant A9318).
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Presenters
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Kim Lefmann
- Niels Bohr Inst