B. Champagne et al., Assessment of conventional density functional schemes for computing the dipole moment and (hyper)polarizabilities of push-pull pi-conjugated systems, J PHYS CH A, 104(20), 2000, pp. 4755-4763
DFT schemes based on conventional exchange-correlation (XC) functionals hav
e been employed to determine the dipole moment (mu), polarizability (alpha)
, and first (beta) and second (gamma) hyperpolarizabilities of push-pull pi
-conjugated systems. In addition to the failures already pointed out for al
pha and gamma in a recent study on polyacetylene chains [J. Chem. Phys. 199
8, 109, 10489; Phys. Rev. Lett. 1999, 83, 694], these functionals are also
unsuitable for the evaluation of mu and beta. In the case of beta, in parti
cular, an almost catastrophic behavior with respect to increasing chain len
gth is found. We show that the C functional has a negligible effect on the
calculated mu, alpha, beta, and gamma whereas the X-part is responsible for
the large property overestimations when the size of the system increases.
The overly large mu values are associated with an overestimation of the cha
rge transfer between the donor and the acceptor whereas for alpha, beta, an
d gamma, incomplete screening of the external electric field is responsible
for the large discrepancies with respect to accurate values. Our results s
how that current XC functionals incorrectly describe the polarization of co
njugated systems when the polarization is due to donor/acceptor substitutio
n or an external field or both.