Computational study of An-X bonding (An = Th, U; X = p-block-based ligands) in pyrrolic macrocycle-supported complexes from the quantum theory of atoms in molecules and bond energy decomposition analysis
A systematic computational study of organoactinide complexes of the form [LAnX] has been carried out using density functional theory, the quantum theory of atoms in molecules (QTAIM) and Ziegler-Rauk energy decomposition analysis (EDA) methods. The systems studied feature L = trans-calix[2]benzene[2...
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Veröffentlicht in: | Dalton transactions : an international journal of inorganic chemistry 2017, Vol.46 (3), p.760-769 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | A systematic computational study of organoactinide complexes of the form [LAnX]
has been carried out using density functional theory, the quantum theory of atoms in molecules (QTAIM) and Ziegler-Rauk energy decomposition analysis (EDA) methods. The systems studied feature L = trans-calix[2]benzene[2]pyrrolide, An = Th(iv), Th(iii), U(iii) and X = BH
, BO
C
H
, Me, N(SiH
)
, OPh, CH
, NH
, OH, F, SiH
, PH
, SH, Cl, CH
Ph, NHPh, OPh, SiH
Ph, PHPh
, SPh, CPh
, NPh
, OPh, SiPh
PPh
, SPh. The PBE0 hybrid functional proved most suitable for geometry optimisations based on comparisons with available experimental data. An-X bond critical point electron densities, energy densities and An-X delocalisation indices, calculated with the PBE functional at the PBE0 geometries, are correlated with An-X bond energies, enthalpies and with the terms in the EDA. Good correlations are found between energies and QTAIM metrics, particularly for the orbital interaction term, provided the X ligand is part of an isoelectronic series and the number of open shell electrons is low (i.e. for the present Th(iv) and Th(iii) systems). |
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ISSN: | 1477-9226 1477-9234 |
DOI: | 10.1039/c6dt04340b |