Single-Particle Excitations in Narrow Energy Bands
- 10 May 1967
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 157 (2), 295-314
- https://doi.org/10.1103/physrev.157.295
Abstract
Hubbard's model for studying correlation effects in systems with narrow energy bands is analyzed by means of a technique which allows the calculation of moments of the individual peaks in the spectral weight function for single-particle excitations. The analysis of the zeroth moments of the peaks shows that the total weight in the bands depends on the strength of the kinetic-energy term in the Hamiltonian even though the bands may be narrow and widely separated. This conclusion is illustrated and verified by an exact calculation for the case when there are only two lattice sites. Analysis of first and higher moments yields results for nonmagnetic or paramagnetic phases which are in qualitative agreement with Hubbard's improved solution. However, we find that (a) there occurs a spin-dependent shift in the band energies which has not been obtained by other treatments of the model and which energetically favors ferromagnetism, and (b) single-particle excitations are more heavily damped in antiferromagnetic than in isomorphic paramagnetic phases.Keywords
This publication has 19 references indexed in Scilit:
- Hall Coefficient of Hubbard's ModelPhysical Review B, 1966
- Localized Impurity States in Metals: Dilute Alloys of Ni in BePhysical Review B, 1966
- Localized Impurity States in Metals: Evaluation ofU+4JPhysical Review Letters, 1965
- Correlation of Electrons in a NarrowBandPhysical Review B, 1965
- Theory of the Insulating StatePhysical Review B, 1964
- Electron Correlation and Ferromagnetism of Transition MetalsProgress of Theoretical Physics, 1963
- Band Theoretical Interpretation of Neutron Diffraction Phenomena in Ferromagnetic MetalsJournal of the Physics Society Japan, 1963
- The transition to the metallic statePhilosophical Magazine, 1961
- A General Theory of Magnetic Resonance AbsorptionJournal of the Physics Society Japan, 1954
- The Dipolar Broadening of Magnetic Resonance Lines in CrystalsPhysical Review B, 1948