Integral Transform Gaussian Wavefunctions for H32+ and H3+
- 1 September 1970
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 53 (5) , 1657-1661
- https://doi.org/10.1063/1.1674240
Abstract
Wavefunctions obtained from a particular integral transformation of Gaussian orbitals were used to calculate the ground state energies of both and molecular ions. A linear combination of integral transform Gaussian‐orbital–molecular‐orbital (LCITGO–MO) wavefunction, with basis orbitals placed on the nuclei, gives for H3+ a total energy of − 1.27724 a.u. at the equilibrium internuclear separation The best floating function of this type gives at the internuclear separation This accounts for 99.5% of the Hartree–Fock energy. The same integral transform of a total wavefunction, with the basis functions placed on the nuclei gives at , while letting the orbitals float improves the energy to − 1.22292 a.u. . The best single‐center function gives (99.4% of the s‐limit energy) at , whereas the best single‐centre total transformed wavefunction has , also at The ground state energy of the system is with our best non‐floating function, and becomes − 0.11708 a.u. for our floating wavefunction. The latter is 94.6% of the exact energy. The optimum single‐center function gives at
Keywords
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