4.6 Article

Theoretical and Experimental Spectroscopic Approach of Fluorinated Ln3+-β-Diketonate Complexes

Journal

JOURNAL OF PHYSICAL CHEMISTRY A
Volume 114, Issue 30, Pages 7928-7936

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jp104038r

Keywords

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Funding

  1. CNPq
  2. CAPES
  3. RENAMI (Brazilian Molecular and Interfaces Nanotechnology Network)
  4. FCT (Fundacao para a Ciencia e a Tecnologia, Portugal) [PTDC/QUI-QUI/098098/2008]

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In this paper we report the synthesis of two new complexes, [Eu(fod)(3)(phen)] and [Tb(fod)(3)(phen)] (fod = 6,6,7,7,8,8,8-heptafluoro-2,2-dimethyl-3,5-octadionate and phen = 1,10-phenanthroline), and their complete characterization, including single-crystal X-ray diffraction, UV-vis spectroscopy, IR spectroscopy, and TGA. The complexes were studied in detail via both theoretical and experimental approaches to the photophysical properties. The [Eu(fod)(3)(phen)] complex crystallizes in the monoclinic space group P2(1)/c. The crystal structure of [Eu(fod)(3)(phen)] exhibits an offset pi-pi stacking interaction between the phenanthroline ligands of adjacent lanthanide complexes. The Eu3+ cation is coordinated to three fod anionic ligands and to one phen. The symmetry around Eu3+ is best described as a highly distorted square antiprism. The molar absorption coefficients of [Eu(fod)(3)(phen)] and [Tb(fod)(3)(phen)] revealed an improved ability to absorb light in comparison with the stand-alone phen and fod molecules. [Tb(fod)(3)(phen)] emits weak UV excitation, with this feature being explained by the triplet-D-5(4) resonance, which contributes significantly to the nonradiative deactivation of Tb3+, causing a short lifetime and low quantum yield. The intensity parameters (Omega(2), Omega(4), and Omega(6)) of [Eu(fod)(3)(phen)] were calculated for the X-ray and Sparkle/AM1 structures and compared with values obtained for [Eu(fod)(3)(H2O)(2)] and [Eu(fod)(3)(phen-N-O)] (phen-N-O = 1,10-phenanthroline N-oxide) samples. Intensity parameters were used to predict the radiative decay rate. The theoretical quantum efficiencies from the X-ray and Sparkle/AM1 structures are in good agreement with the experimental values, clearly attesting to the efficacy of the theoretical models.

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