First-Principles Momentum Dependent Local Ansatz Approach to the Momentum Distribution Function in Iron-Group Transition Metals
arXiv:1702.01370 · doi:10.7566/JPSJ.86.034711
Abstract
The momentum distribution function (MDF) bands of iron-group transition metals from Sc to Cu have been investigated on the basis of the first-principles momentum dependent local ansatz wavefunction method. It is found that the MDF for electrons show a strong momentum dependence and a large deviation from the Fermi-Dirac distribution function along high-symmetry lines of the first Brillouin zone, while the electrons behave as independent electrons. In particular, the deviation in bcc Fe (fcc Ni) is shown to be enhanced by the narrow () bands with flat dispersion in the vicinity of the Fermi level. Mass enhancement factors (MEF) calculated from the jump on the Fermi surface are also shown to be momentum dependent. Large mass enhancements of Mn and Fe are found to be caused by spin fluctuations due to electrons, while that for Ni is mainly caused by charge fluctuations. Calculated MEF are consistent with electronic specific heat data as well as the recent angle resolved photoemission spectroscopy data.
35 pages, 26 figures. arXiv admin note: text overlap with arXiv:1607.00632
References in corpus (8)
- Electronic Structure Calculation by First Principles for Strongly Correlated Electron Systems
- Ab initio electronic structure calculation of correlated systems: EMTO-DMFT approach
- Impact of electronic correlations on the equation of state and transport in -Fe
- Local-Ansatz Approach with Momentum Dependent Variational Parameters to Correlated Electron Systems
- Momentum-dependent local ansatz approach to correlated electrons
- First-Principles Theory of Momentum Dependent Local Ansatz Approach to Correlated Electron System
- First-Principles Momentum-Dependent Local Ansatz Wavefunction and Momentum Distribution Function Bands of Iron
- First-Principles Momentum Dependent Local Ansatz Approach to the Ground-State Properties of Iron-Group Transition Metals