Specific Heat-Coefficient of YbAl3 Studied by Combined Nearly Free Electron Conduction Band Hybridized with Localized f Electrons with Correlation Effect
arXiv:0905.2848 · doi:10.1143/JPSJ.78.064707
Abstract
Based on the recently proposed band model, the electronic specific heat of moderately heavy electron compound YbAl are investigated. The band term of the Hamiltonian consists of three parts; conduction electrons described by the nearly free electron method, localized 4f electrons of Yb ions and the hybridization term between these electrons. Extracting several bands near the Fermi level, we reconstruct the low-energy effective Hamiltonian in order to consider the correlation effect, which is studied by using the self-consistent second order perturbation theory combined with local approximation. The temperature dependence of the specific heat is calculated as a function of temperature from the numerical derivative of the internal energy. Sommerfeld coefficient is also calculated from the direct formula. The overall structure of is in quantitative agreement with the experimental results, which have the characteristic two-peak structures. They originate from the correlation effect and the structure of the non-interacting density of states, respectively. We show that our effective Hamiltonian yielding the realistic band structure may describe quantitatively heavy electron compounds with conduction bands composed of s- or p- electrons.
7 pages, 6 figures, To appear in J. Phys. Soc. Jpn
References in corpus (4)
- Universal scaling in the dynamical conductivity of heavy fermion Ce and Yb compounds
- Pseudogap Formation and Heavy Carrier Dynamics in Intermediate Valence YbAl3
- Field dependent effective masses in YbAl
- Absence of Hybridization Gap in Heavy Electron Systems and Analysis of YbAl3 in terms of Nearly Free Electron Conduction Band