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Journal ArticleDOI

New Method for Calculating Wave Functions in Crystals and Molecules

James C. Phillips, +1 more
- 15 Oct 1959 - 
- Vol. 116, Iss: 2, pp 287-294
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TLDR
In this article, it is shown that advantage of crystal symmetry can be taken to construct wave functions which are best described as the smooth part of symmetrized Bloch functions.
Abstract
For metals and semiconductors the calculation of crystal wave functions is simplest in a plane wave representation. However, in order to obtain rapid convergence it is necessary that the valence electron wave functions be made orthogonal to the core wave functions. Herring satisfied this requirement by choosing as basis functions "orthogonalized plane waves." It is here shown that advantage can be taken of crystal symmetry to construct wave functions ${\ensuremath{\phi}}_{\ensuremath{\alpha}}$ which are best described as the smooth part of symmetrized Bloch functions. The wave equation satisfied by ${\ensuremath{\phi}}_{\ensuremath{\alpha}}$ contains an additional term of simple character which corresponds to the usual complicated orthogonalization terms and has a simple physical interpretation as an effective repulsive potential. Qualitative estimates of this potential in analytic form are presented. Several examples are worked out which display the cancellation between attractive and repulsive potentials in the core region which is responsible for rapid convergence of orthogonalized plane wave calculations for $s$ states; the slower convergence of $p$ states is also explained. The formalism developed here can also be regarded as a rigorous formulation of the "empirical potential" approach within the one-electron framework; the present results are compared with previous approaches. The method can be applied equally well to the calculation of wave functions in molecules.

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Journal ArticleDOI

Pressure response to electronic structures of bulk semiconductors at room temperature

TL;DR: In this article, the effect of hydrostatic pressure on the electronic band structures for Si, GaAs, and AlAs bulk semiconductors was studied based on the local empirical pseudopotential formalism.
Journal ArticleDOI

Using pseudopotentials within the interacting quantum atoms approach.

TL;DR: It is shown that, provided that interatomic surfaces are computed from core-reconstructed densities, reasonable results are obtained by integrating reduced density matrices built from the pseudowave functions, and exchange-correlation energies are better reproduced than Coulombic contributions.
Journal ArticleDOI

First order perturbation treatments for relativistic pseudopotentials and corrections to the Hartree-Fock method

N.C. Pyper, +1 more
- 10 Apr 1981 - 
TL;DR: In this article, the relativistic corrections to valence orbital energies in both Hartree-Fock and generalized Phillips-Kleinman pseudopotential theories are tested numerically for single valence electron atoms drawn for the entire periodic table.
Journal ArticleDOI

A minimal model for excitons within time-dependent density-functional theory

TL;DR: In this article, a minimal model for excitons in TDDFT, consisting of two bands from a one-dimensional Kronig-Penney model and simple approximate xc kernels, is presented.
Journal ArticleDOI

An approximate MO-LCAO-SCF method including overlap

TL;DR: In this paper, a molecular orbital method is described which can be applied to molecules where the restrictions of π-electron theory are not fulfilled, and core-valence interactions are treated by means of perturbation theory.
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