Kinetics and equilibria of reversible chelate ring-opening nucleophilic substitution reactions of [(o-dimethylaminophenyl)dimethylarsine]-rhodium(III) complexes
Abstract
The kinetics and equilibria of the reversible reactions trans-[RhL2Cl2]++ Xn–⇌mer-[RhL(L′)Cl2X]1–n have been studied in methanol [Xn–= SCN–, SeCN–, NO2–, N3–, or pyridine; L and L′=(o-dimethylaminophenyl)-dimethylarsine-NAs and -As respectively]. The second-order rate constants of the forward reactions are scarcely affected by the nature of the entering group, whereas the first-order rate constants of the reverse reactions are strongly influenced by the leaving group involved. A linear free-energy relationship of the type ΔG(m→t)‡=αΔG(m→t)⊖+β with a value of α of 0.75 exists for the activation and standard free energies of mer→trans reactions where a dissociative mechanism is considered to be operative. When Xn– is SCN–, N3–, or NO2–, the mer→trans reactions are acid-catalyzed, through protonation of the leaving group.