6–11 Jun 2021
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America/Toronto timezone
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(G*) Constraints on the Spin Hamiltonian and Entropy of the Dipole-Octupole Spin Liquid Candidate Ce2Zr2O7 from Low Temperature Heat Capacity

8 Jun 2021, 15:30
15m
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Underline Conference System

Oral Competition (Graduate Student) / Compétition orale (Étudiant(e) du 2e ou 3e cycle) Magnetic North/Magnétisme Nord TS-8 Magnetic North VII / Nord magnétique VII

Speaker

Evan Smith (McMaster University (Department of Physics and Astronomy))

Description

The Ce3+ pseudospin-1/2 degrees of freedom in the pyrochlore magnet Ce2Zr2O7 are known to possess dipole-octupole (DO) character, making it a candidate for novel quantum spin liquid (QSL) ground states at low temperatures. We report new heat capacity (CP) measurements on Ce2Zr2O7, which can be extrapolated to zero temperature to account for R·ln(2) entropy using a form appropriate to quantum spin ice. The measured CP rises sharply at low temperatures, initially plateauing near 0.08 K, before falling off towards a high temperature zero beyond 3 K. Phenomenologically, the entropy recovery above T = 0.08 K gives R·ln(2) less (R/2)·ln(3/2), the missing Pauling, spin ice entropy. At higher temperatures, the same data set can be fit to the results of a numerical linked cluster (NLC) calculation that allows estimates for the terms in the XYZ Hamiltonian expected for such DO pyrochlore systems. This constrains possible exotic and ordered ground states, and clearly favours the realization of a U(1)π QSL state. NLC calculations of the magnetic susceptibility and dynamic structure factor agree with these results and provide further constraints on the experimentally-determined values of the exchange parameters.

Primary authors

Evan Smith (McMaster University (Department of Physics and Astronomy)) Bruce Gaulin (McMaster University (Department of Physics and Astronomy), McMaster University (Brockhouse Institute for Materials Research), Canadian Institute for Advanced Research)

Co-authors

Dr Owen Benton (RIKEN Center for Emergent Matter Science (CEMS), Max Planck Institute for the Physics of Complex Systems) Danielle Yahne (Colorado State University (Department of Physics)) Benedikt Placke (Max Planck Institute for the Physics of Complex Systems) Tim DeLazzer (Colorado State University (Department of Physics)) Jonathan Gaudet (McMaster University (Department of Physics and Astronomy), Johns Hopkins University (Department of Physics and Astronomy)) Jérémi Dudemaine (Université de Montréal (Département de Physique)) James Beare (McMaster University (Department of Physics and Astronomy)) Connor Buhariwalla (McMaster University (Department of Physics and Astronomy)) Nicholas Butch (National Institute of Standards and Technology (Center for Neutron Research)) Roman Movshovich (Los Alamos National Laboratory) Jim Garrett (McMaster University (Brockhouse Institute for Materials Research)) Casey Marjerrison (McMaster University (Brockhouse Institute for Materials Research)) James Clancy (McMaster University (Brockhouse Institute for Materials Research)) Andrea Bianchi (Université de Montréal (Département de Physique)) Kate Ross (Colorado State University (Department of Physics), Canadian Institute for Advanced Research, )

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