Thermodynamic and Spectroscopic Studies of Lanthanides(III) Complexation with Polyamines in Dimethyl Sulfoxide

P. Di Bernardo,* P. L. Zanonato, A. Melchior, R. Portanova, M. Tolazzi, G. R. Choppin,*§ and Z. Wang
Dipartimento di Scienze Chimiche, Universit di Padova, Via Marzolo 1, 35131 Padova, ITALY, Dipartimento di Scienze e Tecnologie Chimiche, Universit di Udine, Via del Cotonificio 108, 33100 Udine, ITALY, Department of Chemistry, The Florida State University, Tallahassee, Florida 32306-3006, and Pacific Northwest National Laboratory, Richland, Washington 99352
Inorg. Chem., 2008, 47 (3), pp 1155–1164
DOI: 10.1021/ic701337u
Publication Date (Web): January 1, 2008
Copyright © 2008 American Chemical Society
*

 To whom correspondence should be addressed. E-mail:  plinio.dibernardo@unipd.it (P.D.B.), choppin@chem.fsu.edu (G.R.C.).

,

 Università di Padova.

,

 Università di Udine.

,
§

 The Florida State University.

,

 Pacific Northwest National Laboratory.

Abstract

Abstract Image

The thermodynamic parameters of complexation of Ln(III) cations with tris(2-aminoethyl)amine (tren) and tetraethylenepentamine (tetren) were determined in dimethyl sulfoxide (DMSO) by potentiometry and calorimetry. The excitation and emission spectra and luminescence decay constants of Eu3+ and Tb3+ complexed by tren and tetren, as well as those of the same lanthanides(III) complexed with diethylenetriamine (dien) and triethylenetetramine (trien), were also obtained in the same solvent. The combination of thermodynamic and spectroscopic data showed that, in the 1:1 complexes, all nitrogens of the ligands are bound to the lanthanides except in the case of tren, in which the pendant N is bound. For the larger ligands (trien, tren, tetren) in the higher complexes (ML2), there was less complete binding by available donors, presumably due to steric crowding. FT-IR studies were carried out in an acetonitrile/DMSO mixture, suitably chosen to follow the changes in the primary solvation sphere of lanthanide(III) due to complexation of amine groups. Results show that the mean number of molecules of DMSO removed from the inner coordination sphere of lanthanides(III) is lower than ligand denticity and that the coordination number of the metal ions increases with amine complexation from 8 to 10. Independently of the number and structure of the amines, linear trends, similar for all lanthanides, were obtained by plotting the values of ΔGj°, ΔHj°, and TΔSj° for the complexation of ethylenediamine (en), dien, trien, tren, and tetren as a function of the number of amine metal-coordinated nitrogen atoms. The main factors on which the thermodynamic functions of lanthanide(III) complexation reactions in DMSO depend are discussed.

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History

  • Published In Issue February 04, 2008
  • Received July 6, 2007

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