Mapping of reaction pathways by structure correlation methods. A study of the ligand dissociation reaction in quasi-octahedral Re(v) and Tc(v) oxo-complexes.
V. Ferretti et al., Mapping of reaction pathways by structure correlation methods. A study of the ligand dissociation reaction in quasi-octahedral Re(v) and Tc(v) oxo-complexes., PCCP PHYS C, 1(9), 1999, pp. 2303-2309
Intercorrelations among geometrical parameters of a molecular fragment as f
ound in different crystal structures are called structure correlations. Suc
h correlations are believed to represent possible reaction pathways mapping
the course of chemical reactions. Pyramidal O=ML4, ore-complexes [M=Re(v)
and Tc(v)] react easily with oxygenated ligands of different basicities (H2
O, RO-, ArO-, RCOO- etc.) to give quasi-octahedral O=ML4OR addition compoun
ds which are often observed in the crystalline state and a relatively large
number of structural and spectroscopic data on such complexes are availabl
e. Coordination changes from square-pyramidal to quasi-octahedral caused by
the approach of the sixth ligand are found to induce systematic variations
in the polyhedron geometry which are found to correlate with IR v(M=O) str
etching frequencies and pK(a) values of the entering ligands. According to
structure correlation methods, each fragment geometry was assumed to repres
ent a point along a single reaction pathway of the dissociation reaction O=
ML4-OR --> O=ML4 + OR of the complex associating rather similar O=ML4 accep
ters with a series of OR Ligands having quite different donor properties. A
ssuming that the ligand pK(a) (or related Delta G degrees) values can be co
nsidered as a measure of the relative thermodynamic stabilities of the comp
lexes, a mathematical model of the reaction pathway is proposed which, on t
he grounds of the Marcus rate-equilibrium theory, relates activation free e
nergies, thermodynamic stabilities, and geometrical distances from the reac
tion transition state. The reliability of the model is tested, a posteriori
, against experimental values of energies, bond distances and quadratic vib
rational force constants.