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Charge transfer interaction using quasiatomic minimal-basis orbitals in the effective fragment potential method
Author(s) -
Peng Xu,
Mark S. Gordon
Publication year - 2013
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.4829509
Subject(s) - complete active space , basis set , atomic orbital , valence (chemistry) , subspace topology , basis (linear algebra) , cubic harmonic , molecular orbital , sto ng basis sets , linear combination of atomic orbitals , modern valence bond theory , atomic physics , physics , chemistry , quantum mechanics , molecule , computer science , mathematics , geometry , artificial intelligence , electron
The charge transfer (CT) interaction, the most time-consuming term in the general effective fragment potential method, is made much more computationally efficient. This is accomplished by the projection of the quasiatomic minimal-basis-set orbitals (QUAMBOs) as the atomic basis onto the self-consistent field virtual molecular orbital (MO) space to select a subspace of the full virtual space called the valence virtual space. The diagonalization of the Fock matrix in terms of QUAMBOs recovers the canonical occupied orbitals and, more importantly, gives rise to the valence virtual orbitals (VVOs). The CT energies obtained using VVOs are generally as accurate as those obtained with the full virtual space canonical MOs because the QUAMBOs span the valence part of the virtual space, which can generally be regarded as "chemically important." The number of QUAMBOs is the same as the number of minimal-basis MOs of a molecule. Therefore, the number of VVOs is significantly smaller than the number of canonical virtual MOs, especially for large atomic basis sets. This leads to a dramatic decrease in the computational cost.

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