Low-energy spin dynamics in rare-earth perovskite oxides
A. Podlesnyak (1), S. Nikitin (2), G. Ehlers (3) ((1) Neutron, Scattering Division, Oak Ridge National Laboratory, Oak Ridge, TN, USA, (2), Paul Scherrer Institut, Switzerland (3) Neutron Technologies Division, Oak, Ridge National Laboratory, Oak Ridge, TN, USA)

TL;DR
This review discusses recent neutron scattering studies of spin dynamics in rare-earth perovskite oxides, highlighting the distinct behaviors of transition-metal and rare-earth subsystems, and revealing quantum phenomena in Kramers ions like YbAlO3.
Contribution
It provides a comprehensive analysis of magnetic excitations in $RM$O$_3$ compounds, emphasizing the unique low-energy dynamics of rare-earth ions and their implications for quantum magnetism.
Findings
Distinct magnon and rare-earth fluctuation modes separated in energy
Rare-earth ground state properties depend on ion type (Kramers vs non-Kramers)
Observation of fractional spinon continuum and quantum criticality in YbAlO3
Abstract
We review recent studies of spin dynamics in rare-earth orthorhombic perovskite oxides of the type O, where is a rare-earth ion and is a transition-metal ion, using single-crystal inelastic neutron scattering (INS). After a short introduction to the magnetic INS technique in general, the results of INS experiments on both transition-metal and rare-earth subsystems for four selected compounds (YbFeO, TmFeO, YFeO, YbAlO) are presented. We show that the spectrum of magnetic excitations consists of two types of collective modes that are well separated in energy: gapped magnons with a typical bandwidth of 70 meV, associated with the antiferromagnetically (AFM) ordered transition-metal subsystem, and AFM fluctuations of 5 meV within the rare-earth subsystem, with no hybridization of those modes. We discuss the high-energy conventional magnon excitations…
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