Spin-lattice coupling in the frustrated antiferromagnet ZnCr2Se4 probed by ultrasound
Abstract
Ultrasound and magnetization studies of the frustrated spinel ZnCr2Se4 are performed as a function of temperature and magnetic field up to 14 T. In zero field, the sound velocity and attenuation reveal significant anomalies at the antiferromagnetic transition at TN≈ 21 K indicating strong spin-lattice coupling. External magnetic fields shift these anomalies to lower temperatures concomitantly with the reduction of the Néel temperature. At 2 K, the sound velocity as a function of magnetic field manifests three pronounced anomalies: a deep minimum at 5.4 T related to an inflection point of the magnetization followed by two plateaus with distinct stiffness at fields above 7 and 10 T. The first plateau is ascribed to a transformation from a tetragonal to a cubic phase, while the second one corresponds to a state with fully polarized magnetization. The evolution of magnetic and structural states is discussed within a H-T phase diagram and compared with related frustrated magnetic spinels with strong spin-lattice coupling.
- Publication:
-
Physical Review B
- Pub Date:
- September 2012
- DOI:
- 10.1103/PhysRevB.86.104420
- Bibcode:
- 2012PhRvB..86j4420F
- Keywords:
-
- 43.35.+d;
- 62.65.+k;
- 72.55.+s;
- 75.50.Ee;
- Ultrasonics quantum acoustics and physical effects of sound;
- Acoustical properties of solids;
- Magnetoacoustic effects;
- Antiferromagnetics