| Literature DB >> 26765020 |
J Buhot1, C Toulouse1, Y Gallais1, A Sacuto1, R de Sousa2, D Wang3, L Bellaiche4, M Bibes5, A Barthélémy5, A Forget6, D Colson6, M Cazayous1, M-A Measson1.
Abstract
Optical spectroscopy has been combined with computational and theoretical techniques to show how the spin dynamics in the model multiferroic BiFeO(3) responds to the application of hydrostatic pressure and its corresponding series of structural phase transitions from R3c to the Pnma phases. As pressure increases, multiple spin excitations associated with noncollinear cycloidal magnetism collapse into two excitations, which show jump discontinuities at some of the ensuing crystal phase transitions. The effective Hamiltonian approach provides information on the electrical polarization and structural changes of the oxygen octahedra through the successive structural phases. The extracted parameters are then used in a Ginzburg-Landau model to reproduce the evolution with pressure of the spin wave excitations observed at low energy, and we demonstrate that the structural phases and the magnetic anisotropy drive and control the spin excitations.Entities:
Year: 2015 PMID: 26765020 DOI: 10.1103/PhysRevLett.115.267204
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161