Calculation of longitudinal polarizability and second hyperpolarizability of polyacetylene with the Coupled Perturbed Hartree-Fock/Kohn-Sham scheme. Where it is shown how finite oligomer chains tend to the infinite periodic polymer - Université de Pau et des Pays de l'Adour Accéder directement au contenu
Article Dans Une Revue Journal of Chemical Physics Année : 2012

Calculation of longitudinal polarizability and second hyperpolarizability of polyacetylene with the Coupled Perturbed Hartree-Fock/Kohn-Sham scheme. Where it is shown how finite oligomer chains tend to the infinite periodic polymer

Résumé

The longitudinal polarizability, αxx, and second hyperpolarizability, γxxxx, of polyacetylene are evaluated by using the coupled perturbed Hartree-Fock/Kohn-Sham (HF/KS) scheme as implemented in the periodic CRYSTAL code and a split valence type basis set. Four different density functionals, namely local density approximation (LDA) (pure local), Perdew-Becke-Ernzerhof (PBE) (gradient corrected), PBE0, and B3LYP (hybrid), and the Hartree-Fock Hamiltonian are compared. It is shown that very tight computational conditions must be used to obtain well converged results, especially for γxxxx, that is, very sensitive to the number of k⃗ points in reciprocal space when the band gap is small (as for LDA and PBE), and to the extension of summations of the exact exchange series (HF and hybrids). The band gap in LDA is only 0.01 eV: at least 300 k⃗ points are required to obtain well converged total energy and equilibrium geometry, and 1200 for well converged optical properties. Also, the exchange series convergence is related to the band gap. The PBE0 band gap is as small as 1.4 eV and the exchange summation must extend to about 130 Å from the origin cell. Total energy, band gap, equilibrium geometry, polarizability, and second hyperpolarizability of oligomers −(C2H2)m−, with m up to 50 (202 atoms), and of the polymer have been compared. It turns out that oligomers of that length provide an extremely poor representation of the infinite chain polarizability and hyperpolarizability when the gap is smaller than 0.2 eV (that is, for LDA and PBE). Huge differences are observed on αxx and γxxxx of the polymer when different functionals are used, that is in connection to the well-known density functional theory (DFT) overshoot, reported in the literature about short oligomers: for the infinite model the ratio between LDA (or PBE) and HF becomes even more dramatic (about 500 for αxx and 1010 for γxxxx). On the basis of previous systematic comparisons of results obtained with various approaches including DFT, HF, Moller-Plesset (MP2) and coupled cluster for finite chains, we can argue that, for the infinite chain, the present HF results are the most reliable.

Dates et versions

hal-01617908 , version 1 (17-10-2017)

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Citer

Valentina Lacivita, Michel Rérat, Roberto Orlando, Mauro Ferrero, Roberto Dovesi. Calculation of longitudinal polarizability and second hyperpolarizability of polyacetylene with the Coupled Perturbed Hartree-Fock/Kohn-Sham scheme. Where it is shown how finite oligomer chains tend to the infinite periodic polymer. Journal of Chemical Physics, 2012, 136, pp.114101. ⟨10.1063/1.3690457⟩. ⟨hal-01617908⟩
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