Electronic properties of various stages of lithium intercalated graphite
- 30 September 1980
- journal article
- Published by IOP Publishing in Journal of Physics C: Solid State Physics
- Vol. 13 (27) , 5105-5124
- https://doi.org/10.1088/0022-3719/13/27/009
Abstract
Presents the results of electronic structure calculations for first and second stages of lithium intercalated graphite (LiC6 and LiC12). Results for LiC6 have been presented earlier by Holzwarth et al. using a modified KKR method. The authors results are in good qualitative agreement with theirs for LiC6. To elucidate electronic structures of several stages of intercalation, they have studied various modifications of graphite and also present results for some useful hypothetical unit cells. All the authors calculations have been performed within the framework of the extended tight binding (LCAO) method with the Gaussian basis set. From detailed calculations of densities of states, they conclude that Li-2s electrons are transferred into carbon pi bands. This results in shifting the Fermi level into the region of high density of states (compared to pure graphite) and thus to increased conductivity. The calculated density of states at the Fermi level for LiC6 and LiC12 is 0.25 and 0.12/(eV C atom), respectively. Recall that for pure graphite this number is nearly equal to zero. The authors have computed the Fermi surface extremal orbits and present data for these orbits to be compared with, e.g. cyclotron experiments. Important differences are found in Fermi surfaces of stage-1 and stage-2 compounds. The authors also show that a first principle quasi-two-dimensional Harrison construction can predict and explain the shape of the Fermi surfaces for intercalated graphite compounds. The calculations also tend to support the rigid band model idea which has been proposed in the literature.Keywords
This publication has 57 references indexed in Scilit:
- An algorithm for the construction of fully symmetry adapted Fock matrices for molecular Hartree-Fock calculationsComputers & Chemistry, 1977
- Photoemission studies of graphite high-energy conduction-band and valence-band states using soft-x-ray synchrotron radiation excitationPhysical Review B, 1977
- Comparative study of the electronic structure of and its precursor using the extended tight-binding methodPhysical Review B, 1977
- Electronic energy band parameters of graphite and their dependence on pressure, temperature and acceptor concentrationJournal of Physics and Chemistry of Solids, 1977
- Roothaan-Hartree-Fock atomic wavefunctionsAtomic Data and Nuclear Data Tables, 1974
- Band structure, cohesive energy, optical conductivity, and Compton profile of lithiumPhysical Review B, 1974
- Energy Band Structure of Lithium Fluoride Crystals by the Method of Tight BindingPhysical Review B, 1971
- Self-Consistent Molecular-Orbital Methods. IX. An Extended Gaussian-Type Basis for Molecular-Orbital Studies of Organic MoleculesThe Journal of Chemical Physics, 1971
- Application of the Gaussian-Type Orbitals for Calculating Energy Band Structures of Solids by the Method of Tight BindingThe Journal of Chemical Physics, 1970
- Band structure and optical properties of graphite and of the layer compounds GaS and GaSeIl Nuovo Cimento B (1971-1996), 1967