| Literature DB >> 27682617 |
Elizabeth P Wildman1, Gábor Balázs2, Ashley J Wooles1, Manfred Scheer2, Stephen T Liddle1.
Abstract
Despite the burgeoning field ofEntities:
Year: 2016 PMID: 27682617 PMCID: PMC5056418 DOI: 10.1038/ncomms12884
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Synthetic routes to thorium–phosphorus complexes.
Complex 2 is prepared by a salt-elimination reaction of 1. Complex 3 is prepared either by deprotonation of 2 or by a protonation reaction of the cyclometallate complex 4. Complex 5 is prepared variously by protonation reactions involving cyclometallate 4. Complex 6 is prepared by two different protonation strategies involving 3 or 4.
Figure 2Molecular structure of 2 at 150 K with displacement ellipsoids set to 40%.
Non-phosphorus-bound hydrogen atoms and minor disorder components are omitted for clarity.
Figure 3Molecular structure of 3 at 150 K with displacement ellipsoids set to 40%.
Non-phosphorus-bound hydrogen atoms are omitted for clarity. The Th···HP agostic-type interaction suggested by the structural, NMR and IR spectroscopic data is omitted for clarity.
Figure 4Molecular structure of 5 at 100 K with displacement ellipsoids set to 40%.
Non-phosphorus-bound hydrogen atoms, minor disorder components and lattice solvent are omitted for clarity.
Figure 5Molecular structure of 6 at 150 K with displacement ellipsoids set to 40%.
Hydrogen atoms and minor disorder components are omitted for clarity.
Experimental and calculated data for thorium-phosphorous complexes.
*Natural bond orbital analyses; the electron occupancies of these orbitals are ⋛97%.
†QTAIM topological electron density (ρ(r)), Laplacian (∇2ρ(r)), electronic energy density (H(r)) and ellipticity (ɛ() bond critical point data.
‡Selected 31P NMR spectroscopic and computed DFT, NBO and QTAIM data for 2, the anion component of 3 (3), 5 and the anion component of 6 (6); all molecules geometry optimized without symmetry constraints at the restricted LDA VWN BP TZP/ZORA level.
§31P NMR spectroscopic chemical shift referenced relative to 85% H3PO4.
||Calculated Th–P distances (Å).
¶Mayer bond indices.
#MDC-q charges on thorium.
**MDC-q charges on phosphorus.
Figure 6Kohn–Sham molecular orbital representation of the principal Th–P interaction of 2.
HOMO (−4.285 eV) represents the principal thorium–phosphorus covalent σ-bonding interaction in 2.
Figure 7Kohn–Sham molecular orbital representations of the principal Th–P interactions of 3−.
HOMO−1 (a, −0.394 eV) and HOMO (b, −0.374 eV) represent the two principal thorium–phosphorus covalent σ- and π-bonding interactions in the anion component of 3.
Figure 8Kohn–Sham molecular orbital representations of the principal Th–P interactions of 5.
HOMO−1 (a, −4.447 eV) and HOMO (b, −3.777 eV) represent the two principal thorium–phosphorus covalent σ-bonding and dative π-symmetry interactions in 5.
Figure 9Kohn–Sham molecular orbital representations of the principal Th–P interactions of 6−.
HOMO−2 (a, −1.576 eV), HOMO−1 (b, −1.136 eV) and HOMO (c, −1.097 eV) represent the three principal thorium–phosphorus covalent σ- and π-bonding interactions in the anion component of 6. The two Th–P π-interactions are delocalized in the molecular orbital model but together with the σ-bond these pseudo triple bonds equate to Th=P double bonds in a Lewis bonding scheme.