Absence of nematic ordering transition in a diamond lattice: Application to
arXiv:1609.01729 · doi:10.1103/PhysRevB.95.020403
Abstract
Recent neutron scattering observations by Plumb et al. [1] reveal that the ground state of is magnetic with two distinct Fe environments, instead of a quantum spin liquid as had been previously thought. Starting with the relevant O(N)-symmetric vector model of , we study how the discrete () and continuous rotational symmetries are successively broken, yielding nematic and ordered phases. At high temperatures, we find that the nematic order parameter falls as (), and therefore, lacks any distinct nematic ordering temperature. This feature indicates that the three-dimensional diamond lattice of is highly susceptible to the breaking of Ising symmetries, and explains the two distinct Fe environments that is present even at high temperatures, as seen by Mössbauer and far infrared optical spectroscopy.
9 pages with Supplemental Material, 5 figures
References in corpus (6)
- Theory of Electron Nematic Order in LaOFeAs
- Order by disorder and spiral spin liquid in frustrated diamond lattice antiferromagnets
- Topological spin liquid on the hyper-kagome lattice of Na_4Ir_3O_8
- A Spin-Orbital Singlet and Quantum Critical Point on the Diamond Lattice: FeSc2S4
- Spin-orbiton and quantum criticality in FeSc2S4
- A Magnetic Model of the Tetragonal-Orthorhombic Transition in the Cuprates