Precursor catenand complexes: synthesis, structure, and electrochemistry of bis(2,6-di-iminopyridyl) complexes of nickel(II). The single-crystal X-ray structureof [NiL42][BF4]2
Abstract
Reaction of Ni(BF4)2·6H2O with 2 equivalents of the tridentate 2,6-di-iminopyridyl ligands (L)[L = NC5H3(CMeNR)-2,6 (R = Et, Ph, CH2Ph, or CH2CH2CH2Ph)] in EtOH-CH2Cl2, affords the octahedral complexes [NiL2][BF4]2. The complex [NiL42][BF4]2(R = CH2CH2CH2Ph) crystallises in the triclinic space group P, with a= 11.640(4), b= 12.884 6(27), c= l8.906(6)Å, a= 90.270(22), β= 95.226(28), γ= 112.098(24)°, and Z = 2. The single-crystal X-ray structure shows a distorted octahedral geometry around nickel(II) with four imine N-donors occupying equatorial sites [Ni–N(imine) 2.135(7), 2.121(7), 2.142(7), and 2.160(7)Å] and two shorter axial bonds to pyridyl N-donors [Ni–N (py) 1.989(7) and 1.981(7)Å]. The four propylphenyl groups of L extend past the inner co-ordination sphere of the metal ion into positions which could potentially be linked together to form octahedral catenand species. Cyclic voltammetry of [NiL2][BF4]2(R = CH2Ph or CH2CH2CH2Ph) in MeCN at platinum electrodes shows for each complex two reversible one-electron reductions at 1E½=–1.56 and –1.53 V and at 2E½=–1.89 and –1.87 V respectively, and one one-electron oxidation process at E½=+1.22 and +1.12 V vs. ferrocene–ferrocenium respectively. The quantitative electrogeneration of the corresponding mono-reduced and -oxidised species has been accomplished and assigned by e.s.r. spectroscopy to the formation of nickel-(I) and -(III) complexes respectively.