Self-consistent mixed-basis approach to the electronic structure of solids
- 15 February 1979
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 19 (4) , 1774-1782
- https://doi.org/10.1103/physrevb.19.1774
Abstract
A mixed-basis method is developed for the calculation of the electronic structure of solids. The method is shown to be capable of treating crystals with large complex unit cells. A combined set of plane waves and Bloch sums of localized functions is employed as basis functions, thus leading to a very efficient representation of systems which contain both highly localized (atomiclike) and delocalized (plane-wave-like) electrons. The crystalline potential is determined in a fully self-consistent manner with no approximations made to its shape. The present method has the flexibility of being easily applicable to the study of many different systems (e.g., surface calculations with supercells). Specific application is made to bulk Nb and Pd to demonstrate the efficiency and accuracy of the method. Very good agreement with experimental results and with band structures calculated using other methods is obtained. It is found that, with a mixed basis, only a relatively small set of functions is needed to obtain convergent wave functions for the electrons.Keywords
This publication has 26 references indexed in Scilit:
- Effect of substrate temperature on the microstructure of thin-film silicideApplied Physics Letters, 1977
- Combined representation method for use in band-structure calculations: Application to highly compressed hydrogenPhysical Review B, 1977
- Plane-Wave-Gaussian Energy-Band Study of NbPhysical Review B, 1971
- Electron Correlations at Metallic Densities. IVPhysical Review B, 1970
- Modification of the Orthogonalized-Plane-Wave Method Applied to CopperPhysical Review B, 1969
- Combined Plane-Wave Tight-Binding Method for Energy-Band Calculations with Application to Sodium Iodide and Lithium IodidePhysical Review B, 1969
- Modifications to the Orthogonalized-Plane-Wave Method for Use in Transition Metals: Electronic Band Structure of NiobiumPhysical Review B, 1967
- Interpolation Scheme for Band Structure of Noble and Transition Metals: Ferromagnetism and Neutron Diffraction in NiPhysical Review B, 1966
- Self-Consistent Equations Including Exchange and Correlation EffectsPhysical Review B, 1965
- Inhomogeneous Electron GasPhysical Review B, 1964