Meta-orbital Transition in Heavy-fermion Systems: Analysis by Dynamical Mean Field Theory and Self-consistent Renormalization Theory of Orbital Fluctuations
arXiv:1008.3804 · doi:10.1143/JPSJ.79.114717
Abstract
We investigate a two-orbital Anderson lattice model with Ising orbital intersite exchange interactions by means of dynamical mean field theory combined with the static mean field approximation of the intersite orbital interactions. Focusing on Ce-based heavy-fermion compounds, we examine the orbital crossover between the two orbital states, when the total f-electron number per site n_f is n_f ~ 1. We show that a "meta-orbital" transition, at which the occupancy of the two orbitals changes steeply, occurs when the hybridization between the ground-state f-electron orbital and conduction electrons are smaller than that between the excited f-electron orbital and conduction electrons. Near the meta-orbital critical end point, the orbital fluctuations are enhanced, and couple with the charge fluctuations. A critical theory of the meta-orbital fluctuations is also developed by applying the self-consistent renormalization theory of itinerant electron magnetism to the orbital fluctuations. The critical end point, first-order transition and crossover are described within Gaussian approximations of orbital fluctuations. We discuss the relevance of our results to CeAl2, CeCu2Si2, CeCu2Ge2 and the related compounds, which all have low-lying crystalline-electric-field excited states.
11 pages, 6 figures, J. Phys. Soc. Jpn. 79, (2010) 114717
References in corpus (7)
- The numerical renormalization group method for quantum impurity systems
- Sum-rule Conserving Spectral Functions from the Numerical Renormalization Group
- Signatures of valence fluctuations in CeCu2Si2 under high pressure
- A Numerical Renormalization Group approach to Green's Functions for Quantum Impurity Models
- Superconductivity emerging near quantum critical point of valence transition
- Spin Fluctuation Theory for Quantum Tricritical Point Arising in Proximity to First-Order Phase Transitions: Applications to Heavy-Fermion Systems, YbRh2Si2, CeRu2Si2, and beta-YbAlB4
- Crystalline-Electric-Field Effect on the Resistivity of Ce-based Heavy Fermion Systems
Cited by in corpus (25)
- Multiple quantum phase transitions and superconductivity in Ce-based heavy fermions
- Possible quadrupole density wave in the superconducting Kondo lattice CeRh2As2
- Emergent loop-nodal s-wave superconductivity in CeCuSi: similarities to the iron-based superconductors
- Theoretical prediction and spectroscopic fingerprints of an orbital transition in CeCu2Si2
- Avoided Valence Transition in a Plutonium Superconductor
- Full-gap superconductivity robust against disorder in heavy-fermion CeCu2Si2
- Unconventional Quantum Criticality due to Critical Valence Transition
- Temperature - pressure phase diagram of CeCoSi: Pressure induced high-temperature phase
- New Universality Class of Quantum Criticality in Ce- and Yb-based Heavy Fermions
- Similar temperature scale for valence changes in Kondo lattices with different Kondo temperatures
- High-resolution resonant inelastic soft X-ray scattering as a probe of the crystal electrical field in lanthanides demonstrated for the case of CeRh2Si2
- Fully gapped s-wave superconductivity enhanced by magnetic criticality in heavy fermion system
- Hexadecapole fluctuation mechanism for s-wave heavy fermion superconductor CeCu2Si2: Interplay between intra- and inter-orbital Cooper pairs
- Structural Transition in the Hidden Ordered Phase of CeCoSi
- Magnetic order and crystalline electric field excitations of the quantum critical heavy fermion ferromagnet CeRhGe
- Unusual Nonmagnetic Ordered State in CeCoSi Revealed by Co-NMR and NQR Measurements
- Triple- quadrupole-octupole order scenario for PrVAl
- Ubiquity of Unconventional Phenomena Associated with Critical Valence Fluctuations in Heavy Fermion Metals
- Plain -wave superconductivity near the magnetic criticality: Enhancement of attractive electron-boson coupling vertex corrections
- Competition between Quadrupole and Magnetic Kondo Effects in Non-Kramers Doublet Systems
- A Study of Ni-Substitution Effects on Heavy-Fermion CeCu2Si2 - Similarities between Ni Substitution and High-Pressure Effects -
- Giant overlap between the magnetic and superconducting phases of CeAu2Si2 under pressure
- High-pressure study of the ground- and superconducting-state properties of CeAuSi
- Gradual pressure-induced enhancement of magnon excitations in CeCoSi
- Distinct effect of Kondo physics on crystal field splitting in electron and spin spectroscopies