Physical review. B, Condensed matter · 1984 · 98 citations · 8 references
Rare Earth MineralMagnetic PropertiesEngineeringMagnetic ResonanceChemistryMagnetoelastic MaterialsMagnetic MaterialsMagnetismMaterials ScienceMolecular MagnetismMagnetoelasticityMagnetic MaterialCrystallographyCrystal-field EffectsFerromagnetismMolecule-based MagnetNatural SciencesAnisotropic MaterialsCondensed Matter PhysicsApplied PhysicsMagnetic Transition TemperatureMagnetic PropertyPreferential Crystallite Orientation
The magnetic properties of the $R{\mathrm{Rh}}_{4}{\mathrm{B}}_{4}$ ($R$ represents rare-earth metal) compounds are discussed in terms of a combined crystalline-electric-field and molecular-field approach. Magnetization data taken on single-crystal Er${\mathrm{Rh}}_{4}$${\mathrm{B}}_{4}$ in five orientations are used to obtain the crystal-field and molecular-field coefficients, resulting in a complete analysis for the paramagnetic properties of this compound. The crystal-field parameters are additionally used to discuss all previously published magnetic data for polycrystalline $R{\mathrm{Rh}}_{4}{\mathrm{B}}_{4}$ compounds. For these highly anisotropic materials, the effect of preferential crystallite orientation on the observed data is pointed out. Consideration of the variation of the magnetic transition temperature ${T}_{m}$ between different constituent rare earths has verified a previous conclusion that the crystal field has a pronounced effect on ${T}_{m}$, but this alone does not fully explain the observations.
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Ferromagnetism in the RERh4B4 compounds
H. B. MacKay, L. D. Woolf, M. B. Maple et al. · Journal of Low Temperature Physics · 1980 · 72 citations