Elastic anomaly of heavy fermion systems in a crystalline field
Kikuo Harigaya, G. A. Gehring (Department of Physics, University of, Sheffield, Sheffield, United Kingdom)

TL;DR
This paper models the elastic anomaly in heavy fermion systems like Ce alloys using an infinite-U Anderson lattice model with crystalline field effects, explaining the temperature-dependent elastic constant behavior.
Contribution
It introduces a mean field slave boson approach to analyze elastic anomalies considering crystalline splitting and conduction bands in heavy fermion systems.
Findings
The model predicts a downward dip in elastic constant with temperature.
The results align with experimental observations of elastic anomalies.
The approach accounts for electron number conservation effects.
Abstract
An elastic anomaly, observed in the heavy fermi liquid state of Ce alloys (for example, CeCu and CeTe), is analyzed by using the infinite- Anderson lattice model. The four atomic energy levels are assumed for f-electrons. Two of them are mutually degenerate. A small crystalline splitting is assumed between two energy levels. The fourfold degenerate conduction bands are also considered in the model. We solve the model using the mean field approximation to slave bosons, changing the Fermi energy in order to keep the total electron number constant. The nonzero value of the mean field of the slave bosons persists over the temperatures much higher than the Kondo temperature. This is the effect of the constant electron number. Next, the linear susceptibility with respect to is calculated in order to obtain the renomalized elastic constant. The resulting temperature…
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