Spin-stiffness of anisotropic Heisenberg model on square lattice and possible mechanism for pinning of the electronic liquid crystal direction in YBCO
arXiv:0804.0400 · doi:10.1103/PhysRevB.78.024439
Abstract
Using series expansions and spin-wave theory we calculate the spin-stiffness anisotropy in Heisenberg models on the square lattice with anisotropic couplings . We find that for the weakly anisotropic spin-half model (), deviates substantially from the naive estimate . We argue that this deviation can be responsible for pinning the electronic liquid crystal direction, a novel effect recently discovered in YBCO. For completeness, we also study the spin-stiffness for arbitrary anisotropy for spin-half and spin-one models. In the limit of , when the model reduces to weakly coupled chains, the two show dramatically different behavior. In the spin-one model, the stiffness along the chains goes to zero, implying the onset of Haldane-gap phase, whereas for spin-half the stiffness along the chains increases monotonically from a value of for towards for . Spin-wave theory is extremely accurate for spin-one but breaks down for spin-half presumably due to the onset of topological terms.
6 pages, 3 figures
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