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October 27, 2025International Journal of Molecular Sciences3 citationsOpen Access

Potentiometric Studies of the Complexation Properties of Selected Lanthanide Ions with Schiff Base Ligand

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JBJoanna A. BaranskaKKKatarzyna Koroniak–SzejnMZMichał Zabiszak

Key Points

  • Identification of energy transfer inefficiency in lanthanide complexes reveals insights for future applications.
  • Spectroscopic techniques including UV-Vis spectroscopy and mass spectrometry confirm the ligand's properties and complex formation.
  • Potentiometric titration provides stability constants, elucidating metal-ligand binding equilibria across various complexes.
  • Elemental analysis and infrared spectroscopy enhance understanding of structural characteristics in lanthanide-ligand systems.

Abstract

The synthesis, characterization, and equilibrium studies of complexes of selected lanthanide ions Eu(III), Gd(III), and Tb(III) with the ligand 1,3-bis(3-bromo-5-chlorosalicylideneamino)-2-propanol (H3L) are reported. It was found that in the solid state, the complexes with the formulas Eu(H3L)2(NO3)3, Gd(H3L)2(NO3)3, and Tb(H3L)2(NO3)3 are formed. In solution, complexes with stoichiometries of Ln(III):H3L 1:1 and 1:2 were obtained. The ligand H3L was isolated in crystalline form, and its molecular structure and conformation were determined by single-crystal X-ray diffraction analysis. The compounds were further characterized by elemental analysis, infrared spectroscopy, 1H NMR, 13C NMR techniques, and mass spectrometry (ESI), confirming the formation of the Schiff base group. Stability constants of the complexes in solution were determined using potentiometric titration, providing insights into the metal-ligand binding equilibria. In addition, the spectroscopic properties of the ligand and its lanthanide(III) ion complexes were investigated by UV-Vis spectroscopy, which confirmed ligand-to-metal charge transfer interactions, as well as by luminescence measurements. The luminescence studies revealed inefficient energy transfer in Eu(H3L)2(NO3)3 complexes, while no transfer was observed in Tb(H3L)2(NO3)3 systems at any pH value. This behavior is attributed to the large energy gap between the ligand triplet state and the lowest resonant levels of the studied lanthanide ions.

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Cite This Study

Baranska et al. (2025) studied this question.

synapsesocial.com/papers/68ff87e9c8c50a61f2bdd1d0https://doi.org/10.3390/ijms262110379
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