Suppression of Pauling's Residual Entropy in Dilute Spin Ice (DyY)TiO
arXiv:1503.03856 · doi:10.1103/PhysRevB.92.180405
Abstract
Around 0.5 K, the entropy of the spin-ice DyTiO has a plateau-like feature close to Pauling's residual entropy derived originally for water ice, but an unambiguous quantification towards lower temperature is prevented by ultra-slow thermal equilibration. Based on specific heat data of (DyY)TiO we analyze the influence of non-magnetic dilution on the low-temperature entropy. With increasing x, the ultra-slow thermal equilibration rapidly vanishes, the low-temperature entropy systematically decreases and its temperature dependence strongly increases. These data suggest that a non-degenerate ground state is realized in (DyY)TiO for intermediate dilution. This contradicts the expected zero-temperature residual entropy obtained from a generalization of Pauling's theory for dilute spin ice, but is supported by Monte Carlo simulations.
5 pages, 4 figures; slightly revised version to appear in PRB Rapid Communications
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- Observation of Magnetic Monopoles in Spin Ice
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Cited by in corpus (5)
- Refrustration and competing orders in the prototypical Dy2Ti2O7 spin ice material
- Entropy of the diluted antiferromagnetic Ising models on the frustrated lattices using the Wang-Landau method
- Large peaks in the entropy of the diluted nearest-neighbor spin-ice model on the pyrochlore lattice in a [111] magnetic field
- Phonon thermal Hall effect in non-magnetic YTiO
- Interplay of dilution and magnetic field in the nearest-neighbor spin-ice model on the pyrochlore lattice