Understanding Reentrance in Frustrated Magnets: the Case of the ErSnO Pyrochlore
arXiv:2101.08361 · doi:10.1103/PhysRevLett.127.277206
Abstract
Reentrance, the return of a system from an ordered phase to a previously encountered less-ordered one as a controlled parameter is continuously varied, is a recurring theme found in disparate physical systems, from condensed matter to black holes. While diverse in its many incarnations and generally unsuspected, the cause of reentrance at the microscopic level is often not investigated thoroughly. Here, through detailed characterization and theoretical modeling, we uncover the microscopic mechanism behind reentrance in the strongly frustrated pyrochlore antiferromagnet ErSnO. Taking advantage of the recent advance in rare earth stannate single crystal synthesis, we use heat capacity measurements to expose that ErSnO exhibits multiple instances of reentrance in its magnetic field vs. temperature phase diagram for magnetic fields along three cubic high symmetry directions. Through classical Monte Carlo simulations, mean field theory and classical linear spin-wave expansions, we argue that the origins of the multiple occurrences of reentrance observed in ErSnO are linked to soft modes. Depending on the field direction, these arise either from a direct competition between the field-evolved ground states, or from a field-induced enhancement of the competition with a distinct zero-field antiferromagnetic phase. In both scenarios, the phase competition enhances thermal fluctuations which entropically stabilize a specific ordered phase. This results in an increased transition temperature for certain field values and thus the reentrant behavior. Our work represents a detailed examination into the mechanisms responsible for reentrance in a frustrated magnet and may serve as a template for the interpretation of reentrant phenomena in other physical systems.
Main text: 6 pages, 3 figures. Supplementary Material: 14 pages, 9 figures
References in corpus (11)
- Definitive Evidence for Order-by-Quantum-Disorder in Er2Ti2O7
- Anisotropic field-induced ordering in the triangular-lattice quantum spin liquid NaYbSe
- Quantum order by disorder and accidental soft mode Er2Ti2O7
- Magnetic phase diagrams of classical triangular and kagome antiferromagnets
- Quantum spin configurations in Tb2Ti2O7
- Putative spin-nematic phase in BaCdVO(PO)
- Two phases with different domain wall networks and a reentrant phase transition in bilayer graphene under strain
- Néel temperature and reentrant H-T phase diagram of quasi-2D frustrated magnets
- Reentrant incommensurate order and anomalous magnetic torque in the Kitaev magnet -
- Anisotropic phase diagram and spin fluctuations of the hyperkagome magnet Gd3Ga5O12 as revealed by sound velocity measurements
- Doping-induced quantum cross-over in ErTiSnO
Cited by in corpus (7)
- Frustration on a centred pyrochlore lattice in metal-organic frameworks
- Dynamical scaling as a signature of multiple phase competition in YbTiO
- Magnetic phase diagram of a 2-dimensional triangular lattice antiferromagnet NaBaMn(PO)
- Higher-Rank Spin Liquids and Spin Nematics from Competing Orders in Pyrochlore Magnets
- Traversing the pyrochlore stability diagram; microwave-assisted synthesis and discovery of mixed B-site LnInSbO family
- Quantum effects on pyrochlore higher-rank U(1) spin liquids: Pinch-line singularities, spin nematics, and connections to oxide materials
- Reentrant Ferromagnetic Ordering of the Random-Field Heisenberg Model in d>2 Dimensions: Fourier-Legendre Renormalization-Group Theory