AI Article Synopsis

  • A series of new vanadyl (VO(IV)) complexes were created using tetradentate N2O2 Schiff base ligands, characterized through various analytical techniques like FT-IR and UV-vis, with one complex studied in detail using X-ray crystallography.
  • The electrochemical analysis showcased a correlation between oxidation potentials and the electron-withdrawing properties of substituents on the Schiff base ligands, with a specific trend observed.
  • Thermal decomposition of these complexes was analyzed, revealing first-order kinetics and indicating good thermal stability, while unexpected formation of a new vanadium oxide compound during one synthesis was also documented.

Article Abstract

A series of new VO(IV) complexes of tetradentate N2O2 Schiff base ligands (L(1)-L(4)), were synthesized and characterized by FT-IR, UV-vis and elemental analysis. The structure of the complex VOL(1)⋅DMF was also investigated by X-ray crystallography which revealed a vanadyl center with distorted octahedral coordination where the 2-aza and 2-oxo coordinating sites of the ligand were perpendicular to the "-yl" oxygen. The electrochemical properties of the vanadyl complexes were investigated by cyclic voltammetry. A good correlation was observed between the oxidation potentials and the electron withdrawing character of the substituents on the Schiff base ligands, showing the following trend: MeO5-H>5-Br>5-Cl. Furthermore, the kinetic parameters of thermal decomposition were calculated by using the Coats-Redfern equation. According to the Coats-Redfern plots the kinetics of thermal decomposition of studied complexes is of the first-order in all stages, the free energy of activation for each following stage is larger than the previous one and the complexes have good thermal stability. The preparation of VOL(1)⋅DMF yielded also another compound, one kind of vanadium oxide [VO]X, with different habitus of crystals, (platelet instead of prisma) and without L(1) ligand, consisting of a V10O28 cage, diaminium moiety and dimethylamonium as a counter ions. Because its crystal structure was also new, we reported it along with the targeted complex.

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http://dx.doi.org/10.1016/j.saa.2014.09.076DOI Listing

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