New theory of the gamma-alpha phase transition in Ce: quadrupolar ordering
arXiv:cond-mat/0006207 · doi:10.1007/s100510070156
Abstract
We present a theoretical model of the "isostructural" γ-αphase transition in Ce which is based on quadrupolar interactions due to coupled charge density fluctuations of 4f electrons and of conduction electrons. Conduction electrons are treated in tight-binding approximation. The γ-αtransition is described as an orientational ordering of quadrupolar electronic densities in a Pa3 structure. The quadrupolar order of the conduction electron densities is complementary to the quadrupolar order of 4f electron densities. The inclusion of conduction electrons leads to an increase of the lattice contraction at the γ-αtransition in comparison to the sole effect of 4f electrons. We calculate the Bragg scattering law and suggest synchrotron radiation experiments in order to check the Pa3 structure. The theory is capable of accounting for transitions to phases of non-cubic symmetry, but it is not sufficient to describe the magnetic phenomena which we ascribe to the Kondo mechanism. We also present a microscopic derivation of multipolar interactions and discuss the crystal field of γ-Ce.
19 pages, 4 figures, full version to be published in Eur. Phys. J. B
Cited by in corpus (7)
- Puzzle of the gamma-alpha and other phase transitions in cerium
- Thermodynamic and spectral properties of compressed Ce calculated by the merger of the local density approximation and dynamical mean field theory
- The role of the lattice in the phase transition of Ce: a high pressure neutron and x-ray diffraction study
- Infrared and optical spectroscopy of alpha and gamma-phase Ce
- Intra- site 4f-5d electronic correlations in the quadrupolar model of the gamma-alpha phase transition in Ce
- Crystal Structures of Polymerized Fullerides AC60, A=K, Rb, Cs and Alkali-mediated Interactions
- Microscopic theory of quadrupolar ordering in TmTe