Robust,
Basis-Set Independent Method for the Evaluation
of Charge-Transfer Energy in Noncovalent Complexes
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Abstract
Separation
of the energetic contribution of charge transfer to
interaction energy in noncovalent complexes would provide important
insight into the mechanisms of the interaction. However, the calculation
of charge-transfer energy is not an easy task. It is not a physically
well-defined term, and the results might depend on how it is described
in practice. Commonly, the charge transfer is defined in terms of
molecular orbitals; in this framework, however, the charge transfer
vanishes as the basis set size increases toward the complete basis
set limit. This can be avoided by defining the charge transfer in
terms of the spatial extent of the electron densities of the interacting
molecules, but the schemes used so far do not reflect the actual electronic
structure of each particular system and thus are not reliable. We
propose a spatial partitioning of the system, which is based on a
charge transfer-free reference state, namely superimposition of electron
densities of the noninteracting fragments. We show that this method,
employing constrained DFT for the calculation of the charge-transfer
energy, yields reliable results and is robust with respect to the
strength of the charge transfer, the basis set size, and the DFT functional
used. Because it is based on DFT, the method is applicable to rather
large systems