Magnetoelastic coupling, phonon and magnons in inverse spinel NiFe<sub>2</sub>O<sub>4</sub>
ORAL
Abstract
The inverse spinel NiFe2O4 has attracted enormous interest due to the potential applications in several important fields such as electronic devices and catalysis. NiFe2O4 exhibits a cation distribution of (Fe3+)A(Ni2+Fe3+)BO4, with Fe3+ occupying the tetrahedral(A) sites forming a diamond lattice, and Ni2+ and Fe3+ sharing the octahedral(B) sites forming a pyrochlore lattice. Powder neutron diffraction reveals the cubic spinel structure persisting down to 5 K. A collinear ferrimagnetic order with antiparallel moments between A and B sites is found below TN ≈ 860 K with a magnetoelastic coupling at TN. Magnetization measurements further reveal NiFe2O4 enters a state with the coexistence of a ferrimagnetic order and a spin glass like state below the freezing temperature Tf ≈ 40 K. A few branches of phonons and magnons with a crossing feature are observed via single-crystal inelastic neutron scattering at 100 K (Tf <T<TN) and 5 K (T< Tf). All these results and magnetic exchange constants will be compared to the well-known magnetite Fe3O4 to reveal the distinct spin, lattice and orbital degrees of freedom.
*The work has been supported by the U.S. DOE under EPSCoR Grants No. DESC0012432, DE-SC0016315 and US DOE Basic Energy Sciences Division of Scientific User Facilities.
–
Presenters
-
Qiang Zhang
- Louisiana State University & Oak Ridge National Laboratory (current affiliation)
- Neutron Scattering Division, Oak Ridge National Laboratory