REASSESSMENT OF THE ELECTRONIC AND MOLECULAR-STRUCTURE, BONDING, AND STABILITY OF ZEROVALENT NICKEL ACETYLENE COMPLEXES BY THE DENSITY-FUNCTIONAL METHOD

Citation
I. Hylakryspin et al., REASSESSMENT OF THE ELECTRONIC AND MOLECULAR-STRUCTURE, BONDING, AND STABILITY OF ZEROVALENT NICKEL ACETYLENE COMPLEXES BY THE DENSITY-FUNCTIONAL METHOD, Organometallics, 17(21), 1998, pp. 4724-4733
Citations number
136
Categorie Soggetti
Chemistry Inorganic & Nuclear","Chemistry Inorganic & Nuclear
Journal title
ISSN journal
02767333
Volume
17
Issue
21
Year of publication
1998
Pages
4724 - 4733
Database
ISI
SICI code
0276-7333(1998)17:21<4724:ROTEAM>2.0.ZU;2-F
Abstract
The density functional theory (DFT) method has been used to study the electronic and molecular structure of mono-, di-, and trinuclear zerov alent nickel complexes containing acetylene and sigma-donor ligands. T he calculations were carried out; for the model compounds (C2H2)(2)Ni (10) and (C2H2)Ni(PH3)(2) (12) with quasi-tetrahedral (10a, 12a) and p lanar (10b, 12b) conformations as well as for (C2H2)(3)Ni-2 (14) and ( C2H2)(4)Ni-3 (23). Rotational preference of complexes 10 and 12 is dis cussed on the basis of the 18 VE rule, relative energies, and natural bond orbital (NBO) population analyses. Optimized geometries and calcu lated IR and NMR properties are compared with known experimental data. It is shown how the effective hack-bonding into acetylene in-plane pi (parallel to) MO(s) accounts for rotational preference of 10 and 12 a s well as for the main features of molecular geometry of polynuclear N i(0) compounds. Binding energies (BEs) of acetylene in 10a and 12b are calculated at; the DFT, HF, MP2-MP4, CCSD, and CCSD(T) levels and com pared to those of ethylene in (C2H4)(2)Ni (17), (C2H4)Ni(C2H2) (18), a nd (C2H4)Ni(PH3)(2) (19) as well as to those of CO in Ni(CO)(x), x = 4 (20), 3 (21), 2 (22). It turns out that with respect to 10a the bridg ing acetylene of 14 is bound almost 2 times stronger. Calculated BEs t ogether with energies of association reactions L' + NiL2 --> NiL2L' (L , L' = CO, PH3, C2H2) and L + NiL3 --> NiL4 (L = CO, PF3, PMe3, PH3, C 2H2) as well as of the exchange reaction Ni(CO)(4) + 2C(2)H(2) --> Ni( C2H2)(2) + 4CO are used in the discussion of thermodynamic and kinetic stability of the formally two-coordinated bis(alkyne)Ni compounds.