Magnetoelastic coupling in triangular lattice antiferromagnet CuCrS2
arXiv:0907.4850 · doi:10.1103/PhysRevB.80.104431
Abstract
CuCrS2 is a triangular lattice Heisenberg antiferromagnet with a rhombohedral crystal structure. We report on neutron and synchrotron powder diffraction results which reveal a monoclinic lattice distortion at the magnetic transition and verify a magnetoelastic coupling. CuCrS2 is therefore an interesting material to study the influence of magnetism on the relief of geometrical frustration.
6 pages, 6 figures, 1 table
References in corpus (2)
Cited by in corpus (11)
- Magneto-elastic coupling and unconventional magnetic ordering in triangular multiferroic AgCrS2
- Transport properties of Layer-Antiferromagnet CuCrS2: A possible thermoelectric material
- Order-by-disorder in the antiferromagnetic Ising model on an elastic triangular lattice
- Spin correlated dielectric memory and rejuvenation in relaxor ferroelectric CuCrS2
- 120° Helical Magnetic Order in the Distorted Triangular Antiferromagnet alpha-CaCr2O4
- The Duel of Magnetic Interactions & Structural Instabilities: Itinerant Frustration in the Triangular Lattice Compound LiCrSe
- Nuclear and magnetic spin structure of the antiferromagnetic triangular lattice compound LiCrTe investigated by SR as well as neutron and X-ray diffraction
- Synthesis and Anisotropic Magnetic Properties of LiCrTe Single Crystals with a Triangular-Lattice Antiferromagnetic Structure
- Spin-lattice interaction parameters from first principles: theory and implementation
- Large Magnetic-Field-Induced Strain at the Magnetic Order Transition in Triangular Antiferromagnet AgCrS2
- Calculating spin-lattice interactions in ferro- and antiferromagnets: the role of symmetry, dimension and frustration