We report on the self-consistent field solution of the Hartree-Fock-Slater equations using the finite-element method far the three small diatomic molecules N2, BH and CO as examples. The quality of the results is not only better by two orders of magnitude than the fully numerical finite difference m
Calculations on diatomic molecules with Slater-type orbital basis sets
β Scribed by Ahmed Bouferguene; Babak Etemadi; Herbert W. Jones
- Publisher
- John Wiley and Sons
- Year
- 1998
- Tongue
- English
- Weight
- 147 KB
- Volume
- 70
- Category
- Article
- ISSN
- 0020-7608
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β¦ Synopsis
In this work, a general method of calculating multicenter integrals over Slater-type functions is presented and numerical calculations on diatomic molecules, H 2 and N , are carried out. Our results are then compared with those obtained with 2 Gaussian-type functions. The method, which is essentially an addition theorem for Slater-type functions, is outlined and some of its mathematical and numerical properties are presented. As regards our numerical results, although such very small diatomics are of limited interest in chemistry, they are to be considered as the necessary step that will allow us to tune up the computational machinery. Furthermore, the conclusions drawn throughout this work will be used for more general algorithms which will allow us to treat efficiently more complicated systems, namely, three, four, and many more atomic systems.
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