Quantum theory of spin waves for Helical ground states in Hollandite lattice
arXiv:1805.07156 · doi:10.1088/1361-648X/aae9bc
Abstract
We perform spin wave analysis of classical ground states of a model Hamiltonian proposed earlier(Phys. Rev. B {\bf 90}, 104420(2014)) for compounds. It is known that the phase diagram of the Hollandite lattice (lattice of compounds) consists of four different Helical phases(FH, A2H, C2H, CH phase) in the space of model parameters . The spin wave dispersion shows presence of gapless mode which interpolates between quadratic to linear depending on phases and values of 's. In most cases, the 2nd lowest mode shows the existence of a roton minima mainly from to and to path. Few higher modes also show roton minima. Each helical phase has its characteristic traits which can be used to determine the phases itself. The analytical expressions of eigenmodes at high symmetry points are obtained which can be utilized to extract the values of 's. Density of states, specific heat and susceptibilities at low temperature has been studied within spin wave approximation. The specific heat shows departure from dependence found in three dimensional unfrustrated ferromagnetic(anti-ferromagnetic) system which seems to be the signature of incommensurate helical phase. The parallel susceptibility is maximum for FH phase and minimum for CH phase at low temperature. The perpendicular susceptibility is found to be independent of temperature at very low temperature. Our study can be used to compare experimental results on magnon spectrum, elastic neutron scattering, and finite temperature properties mentioned above for clean system
14 pages, 11 figures
References in corpus (7)
- Exact results for spin dynamics and fractionization in the Kitaev Model
- Fractional excitations in the square-lattice quantum antiferromagnet
- Roton-Maxon Excitation Spectrum of Bose Condensates in a Shaken Optical Lattice
- Measurement of collective excitations in a spin-orbit-coupled Bose-Einstein condensate
- Positions of the magnetoroton minima in the fractional quantum Hall effect
- Incommensurate, helical spin ground states on the Hollandite lattice
- Magnon Dispersion and Specific Heat of Chiral Magnets on the Pyrochlore Lattice