Electronic densities of states of semi-infinite disordered chains: Comparisons of exact and analytic calculations
- 15 January 1986
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 33 (2) , 765-771
- https://doi.org/10.1103/physrevb.33.765
Abstract
Results of exact and analytic calculations of the electronic densities of states (DOS’s) associated with semi-infinite substitutionally disordered chains are presented using the exact position-space renormalization-group (PSRG) method, the augmented-space (AS) formalism, and the embedded-cluster method (ECM). In addition to total DOS’s, the PSRG method allows the calculation of exact partial DOS’s associated with local atomic configurations in a disordered material. Comparisons with the exact results indicate that as in the case of infinite materials the ECM provides a reliable method for the calculation of single-particle properties, such as the DOS, of semi-infinite systems. Furthermore, the ECM is found to be much more accurate than the AS formalism, especially in the case of concentrated substitutionally disordered alloys.Keywords
This publication has 29 references indexed in Scilit:
- Simple scheme for surface-band calculations. IPhysical Review B, 1981
- Scattering-theoretic approach to the electronic structure of semiconductor surfaces: The (100) surface of tetrahedral semiconductors and SiPhysical Review B, 1978
- Electronic states at unrelaxed and relaxed GaAs (110) surfacesPhysical Review B, 1978
- Electronic theory for segregation at the surface of transition-metal alloysPhysical Review B, 1977
- The local electronic densities of states at the surface of disordered alloysSurface Science, 1976
- Electronic structure of aperiodic polymers. I. The average-matrix method and the effect of a cluster of impurities on the band structure of a periodic systemPhysical Review B, 1976
- Electronic structure of alloy surfaces: Coherent-potential approximationSurface Science, 1975
- Model calculation of the electronic structure of a (111) surface in a diamond-structure solidJournal of Physics C: Solid State Physics, 1975
- A green's function theory of surface statesSurface Science, 1971
- Wave Functions for Impurity LevelsPhysical Review B, 1954