Synthesis and Kinetic Study by Ozawa Method of the Thermal Decomposition of Complexes Ln(thd)3phen

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Recently, highly luminescent lanthanide complexes with mixed ligands such as and β-diketone and two herobiaryl ligands have been synthesized and suggested as promising light-conversion molecular devices as described by several authors. The synthesis, luminescence, quantum yields, spectroscopic characteristics, structure, among others properties of these complexes, including the possibility of production thin film films from these materials have been discussed, but little is known about their thermal decomposition kinetics. In this work we report the determination of kinetic parameters of thermal decomposition of the complexes Gd(thd)3phen and Er(thd)3phen (thd=2,2,6,6-tetramethyl-3,5- heptanodione; phen=1,10-phenantroline) using the method proposed by Ozawa (1965). The kinetic parameters obtained for activation energy were: 90 and 87 kJ.mol-1, the values of frequency factor were: 2.3x107 and 2.0x107 s-1 for Gd(thd)3phen and Er(thd)3phen, respectively. On the kinetic energy of the complexes, we notice the following order in thermal stability: Gd(thd)3phen < Er(thd)3phen.

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Materials Science Forum (Volumes 530-531)

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513-519

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November 2006

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© 2006 Trans Tech Publications Ltd. All Rights Reserved

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[1] Alexander, V. Chemical Reviews, 95 (2) (1995) 273-342.

Google Scholar

[2] Lehn, J.M. Supramolecular Chemistry: concepts and perspectives, VCH, Weinheim, (1995).

Google Scholar

[3] Nova, S.P.V.; Pereira, G.A.L.; De Sá, G.F.; Alves Jr., S.; Bazin, H.; Autiero, H.; Mathis, G. Química Nova, 27 (5) (2004) 709-714.

DOI: 10.1590/s0100-40422004000500006

Google Scholar

[4] Nair, M.K.M.; Radhakrishnan, P.K. Thermochimica Acta, 292 (1997) 115-122.

Google Scholar

[5] Rizzo, F.; Papagni, A.; Meinardi, F.; Turbino, R.; Ottonelli, M.; Musso, G.F.; Dellepiane, G. Synthetic Metals, 147 (2004) 143-147.

DOI: 10.1016/j.synthmet.2004.05.027

Google Scholar

[6] Drew, M.G.B.; Foreman, M.R. Stj.; Hudson, M.J.; Kennedy, K.F. Inorganica Chimica Acta, 357 (2004) 4102-4112.

DOI: 10.1016/j.ica.2004.06.032

Google Scholar

[7] Jin, Q.H.; Ricard, L.; Nief, F. Polyhedron, 24 (2005) 549-555.

Google Scholar

[8] Quici, S.; Cavazzini, M.; Marzanni, G.; Accorsi, G.; Armaroli, N.; Ventura, B.; Barigelletti, F. Inorganic Chemistry, 44 (2005), 529 -537.

DOI: 10.1021/ic0486466

Google Scholar

[9] C.S.M. Morais; W.S. Lopes; A.G. Souza; P.A. Santa-Cruz. Journal of metastable and nanocrystalline materials, 20-21 (2004) 462-467.

Google Scholar

[10] C.S.M. Morais; A.G. Souza; P.A. Santa-Cruz. P.A. Journal of Alloys and Compounds, 344 (2002) 101-104.

Google Scholar

[11] Ozawa, T. Bulletin of the Chemical Society of Japan, 38 (1965) 1881.

Google Scholar

[12] Shimadzu. TA Work Station. TGA Kinetic Analysis Program. Version 1. 00. Shimadzu Corporation, (1995).

Google Scholar

[13] K. Nakamoto. Infrared spectra of inorganic and coordination compounds, Wiley Interscience, New York, (1970).

Google Scholar

[14] D.L. Pavia; G.M. Lampman; G.S. Kriz. Introduction to spectroscopy: a guide for students of organic chemistry. Second Edition, Harcourt Brace College Publishers, New York, (1996).

Google Scholar