Refrustration and competing orders in the prototypical Dy2Ti2O7 spin ice material
P. Henelius, T. Lin, M. Enjalran, Z. Hao, J. G. Rau, J. Altosaar, F., Flicker, T. Yavors'kii, M. J. P. Gingras

TL;DR
This study combines simulations and experiments to analyze Dy2Ti2O7 spin ice, revealing competing interactions cause refrustration and low-temperature phenomena, with disorder likely explaining specific heat anomalies.
Contribution
It demonstrates the importance of nuclear specific heat and identifies competing interactions and disorder as key factors in Dy2Ti2O7's low-temperature behavior.
Findings
Nuclear specific heat is significant below 0.5 K.
Competing interactions cause refrustration of long-range order.
Disorder likely explains low-temperature specific heat upturn.
Abstract
Spin ices, frustrated magnetic materials analogous to common water ice, are exemplars of high frustration in three dimensions. Recent experimental studies of the low-temperature properties of the paradigmatic DyTiO spin ice material, in particular whether the predicted transition to long-range order occurs, raise questions as per the currently accepted microscopic model of this system. In this work, we combine Monte Carlo simulations and mean-field theory calculations to analyze data from magnetization, elastic neutron scattering and specific heat measurements on DyTiO. We also reconsider the possible importance of the nuclear specific heat, , in DyTiO. We find that is not entirely negligible below a temperature K and must be taken into account in a quantitative analysis of the calorimetric data of this compound…
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