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Chapitre D'ouvrage Année : 2019

Self-Consistent Electron-Nucleus Cusp Correction for Molecular Orbitals

Pierre-Francois Loos
Anthony Scemama

Résumé

We describe a method for imposing the correct electron-nucleus (e-n) cusp in molecular orbitals expanded as a linear combination of (cuspless) Gaussian basis functions. Enforcing the e-n cusp in trial wave functions is an important asset in quantum Monte Carlo calculations as it significantly reduces the variance of the local energy during the Monte Carlo sampling. In the method presented here, the Gaussian basis set is augmented with a small number of Slater basis functions. Note that, unlike other e-n cusp correction schemes, the presence of the Slater function is not limited to the vicinity of the nuclei. Both the coefficients of these cuspless Gaussian and cusp-correcting Slater basis functions may be self-consistently optimized by diagonalization of an orbital-dependent effective Fock operator. Illustrative examples are reported for atoms.

Dates et versions

hal-02022709 , version 1 (18-02-2019)

Identifiants

Citer

Pierre-Francois Loos, Anthony Scemama, Michel Caffarel. Self-Consistent Electron-Nucleus Cusp Correction for Molecular Orbitals. Lorenzo Ugo Ancarani, Philip E. Hoggan. Advances in Quantum Chemistry, 79, pp.113-132, 2019, State of The Art of Molecular Electronic Structure Computations: Correlation Methods, Basis Sets and More, ⟨10.1016/bs.aiq.2019.03.003⟩. ⟨hal-02022709⟩
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