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Valence Instability and the Quantum Critical Point in an Extended Periodic Anderson Model: Analysis Based on the Dynamical Mean Field Theory
32
Citations
21
References
2008
Year
Quantum DynamicCharge ExcitationsEngineeringValence InstabilityValence FluctuationsElectronic StructureElectron PhysicQuantum Critical PointConduction ElectronQuantum MaterialsQuantum MatterQuantum ScienceElectron DensityPhysicsTopological PhaseCondensed Matter TheorySolid-state PhysicNatural SciencesApplied PhysicsCondensed Matter PhysicsCritical Phenomenon
The dynamical mean field theory combined with exact diagonalization is used to study the valence instability in an extended periodic Anderson model. It is found that at fixed total electron number, the f -electron number is rapidly decreased against the f -electron level ε f (0) in the presence of the repulsive interaction U c f between a conduction electron and an f electron. This implies the enhancement of valence fluctuations due to U c f . In addition, a first-order valence transition is likely to occur, provided the c – f mixing is small and U c f is large enough to be comparable to the band width of conduction electrons. The quantum critical point of valence transition is identified in the ε f (0) – U c f plane. Implications for the valence fluctuations of the related Ce compounds are also discussed.
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