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Synthesis, Structural and Physicochemical Characterization of a Titanium(IV) Compound with the Hydroxamate Ligand N ,2-Dihydroxybenzamide.

Authors :
Passadis, Stamatis S.
Hadjithoma, Sofia
Siafarika, Panagiota
Kalampounias, Angelos G.
Keramidas, Anastasios D.
Miras, Haralampos N.
Kabanos, Themistoklis A.
Source :
Molecules; Sep2021, Vol. 26 Issue 18, p5588, 1p
Publication Year :
2021

Abstract

The siderophore organic ligand N,2-dihydroxybenzamide (H<subscript>2</subscript>dihybe) incorporates the hydroxamate group, in addition to the phenoxy group in the ortho-position and reveals a very rich coordination chemistry with potential applications in medicine, materials, and physical sciences. The reaction of H<subscript>2</subscript>dihybe with TiCl<subscript>4</subscript> in methyl alcohol and KOH yielded the tetranuclear titanium oxo-cluster (TOC) [Ti<superscript>IV</superscript><subscript>4</subscript>(μ-O)<subscript>2</subscript>(HOCH<subscript>3</subscript>)<subscript>4</subscript>(μ-Hdihybe)<subscript>4</subscript>(Hdihybe)<subscript>4</subscript>]Cl<subscript>4</subscript>∙10H<subscript>2</subscript>O∙12CH<subscript>3</subscript>OH (1). The titanium compound was characterized by single-crystal X-ray structure analysis, ESI-MS, <superscript>13</superscript>C, and <superscript>1</superscript>H NMR spectroscopy, solid-state and solution UV–Vis, IR vibrational, and luminescence spectroscopies and molecular orbital calculations. The inorganic core Ti<subscript>4</subscript>(μ-O)<subscript>2</subscript> of 1 constitutes a rare structural motif for discrete Ti<superscript>IV</superscript><subscript>4</subscript> oxo-clusters. High-resolution ESI-MS studies of 1 in methyl alcohol revealed the presence of isotopic distribution patterns which can be attributed to the tetranuclear clusters containing the inorganic core {Ti<subscript>4</subscript>(μ-O)<subscript>2</subscript>}. Solid-state IR spectroscopy of 1 showed the presence of an intense band at ~800 cm<superscript>−1</superscript> which is absent in the spectrum of the H<subscript>2</subscript>dihybe and was attributed to the high-energy ν(Ti<subscript>2</subscript>–μ-O) stretching mode. The ν(C=O) in 1 is red-shifted by ~10 cm<superscript>−1</superscript>, while the ν(N-O) is blue-shifted by ~20 cm<superscript>−1</superscript> in comparison to H<subscript>2</subscript>dihybe. Density Functional Theory (DFT) calculations reveal that in the experimental and theoretically predicted IR absorbance spectra of the ligand and Ti-complex, the main bands observed in the experimental spectra are also present in the calculated spectra supporting the proposed structural model. <superscript>1</superscript>H and <superscript>13</superscript>C NMR solution (CD<subscript>3</subscript>OD) studies of 1 reveal that it retains its integrity in CD<subscript>3</subscript>OD. The observed NMR changes upon addition of base to a CD<subscript>3</subscript>OD solution of 1, are due to an acid–base equilibrium and not a change in the Ti<superscript>IV</superscript> coordination environment while the decrease in the complex's lability is due to the improved electron-donating properties which arise from the ligand deprotonation. Luminescence spectroscopic studies of 1 in solution reveal a dual narrow luminescence at different excitation wavelengths. The TOC 1 exhibits a band-gap of 1.98 eV which renders it a promising candidate for photocatalytic investigations. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14203049
Volume :
26
Issue :
18
Database :
Complementary Index
Journal :
Molecules
Publication Type :
Academic Journal
Accession number :
152692074
Full Text :
https://doi.org/10.3390/molecules26185588