Two-Peak Heat Capacity Accounts for $R\ln(2)$ Entropy and Ground State Access in the Dipole-Octupole Pyrochlore Ce$_2$Hf$_2$O$_7$
E. M. Smith, A. Fitterman, R. Sch\"afer, B. Placke, A. Woods, S. Lee, S. H.-Y. Huang, J. Beare, S. Sharma, D. Chatterjee, C. Balz, M. B. Stone, A. I. Kolesnikov, A. R. Wildes, E. Kermarrec, G. M. Luke, O. Benton, R. Moessner, R. Movshovich, A. D. Bianchi, and B. D. Gaulin

TL;DR
This study reports magnetic heat capacity measurements of Ce$_2$Hf$_2$O$_7$, revealing a two-peak structure indicative of complex low-temperature magnetic states, including potential quantum spin liquid behavior and ground state access.
Contribution
It provides detailed heat capacity data and analysis for Ce$_2$Hf$_2$O$_7$, highlighting the presence of a two-peak structure and suggesting the relevance of interactions beyond the nearest-neighbor XYZ model.
Findings
Observation of two distinct heat capacity peaks at 0.065 K and 0.025 K.
Diffuse magnetic neutron scattering consistent with a classical spin liquid regime.
The ground state accounts for the Rln(2) entropy and shows gapped excitations.
Abstract
Magnetic heat capacity measurements of a high-quality single crystal of the dipole-octupole pyrochlore CeHfO down to a temperature of K are reported. These show a two-peaked structure, with a Schottky-like peak at K, similar to what is observed in its sister Ce-pyrochlores CeZrO and CeSnO. However, a second sharper peak is observed at K, signifying the entrance to the ground state. The ground state appears to have gapped excitations, as even the most abrupt extrapolation to at K fully accounts for the entropy associated with the pseudospin-1/2 doublet for Ce in this environment. The ground state could be conventionally ordered, although theory predicts a much larger anomaly in at much higher temperatures than the measured for expectations from an all-in all-out…
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