Mercury complexes with the ligand benzaldehyde-N(4),N(4)-dimethylthiosemicarbazone (original) (raw)

Abstract

The Schiff base benzaldehyde-N(4),N(4)-dimethylthiosemicarbazone (LH) and its complexes [Hg(NO 3 ) (LH) 2 ]NO 3 (1), [Hg(L) 2 ] (2), [Hg(LH) 2 (l-X) 2 HgX 2 ] [X = Cl (3), Br (4)], [HgI(LH)(l-I) 2 HgI(LH)] (5) and [HgI 2 (LH)] (6) have been synthesized and characterized by IR, mass spectrometry, 1 H and 13 C NMR and by single crystal X-ray diffraction. All the complexes were obtained in ethanol and complex 2, in which the ligand is deprotonated, in addition needs the presence of basic medium. From mercury(II) iodide two complexes with the same molar ratio but with different structures were isolated. In all the complexes the ligand acts as a NS chelate, except in complex 5 in which is only S-donor. The coordination number of the mercury ion and the structures of the complexes depend on the counterion. Complexes 1, 2 and 6 are monomeric species but with different coordination spheres: N 2 S 2 O 2 with a distorted octahedral arrangement in complex 1, and N 2 S 2 or NSI 2 in a pseudo-tetrahedral geometry in complexes 2 and 6, respectively. However, 3, 4 and 5 are binuclear complexes with two halido bridges, but they show two different structures. In 3 and 4, each mercury ion has a different environment giving an asymmetric structure, one is bonded to two NS-ligands and two halido bridges in a distorted octahedral geometry, and the other one has a tetrahedral environment formed by four halido ligands. In complex 5 both mercury ions are equivalent with a SI 3 distorted tetrahedral coordination sphere, formed by one S-bonded ligand, one terminal iodido and two iodido bridges.

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