The transition metal complexes of ethylvanillin [Mn(L)(HO)] (1), [Co(L)(HO)] (2), [Ni(L)(HO)] (3), and [Zn(L)(HO)] (4) have been synthesized. The geometric and electronic structure of 1, 2, 3 and 4 has been solved by X-ray diffraction analysis and EPR spectroscopy. They are octahedral complexes with a cis arrangement of the two water molecules. All the structures were calculated by DFT methods at the level of theory B3P86/6-311g. The EPR spectra of 1 are isotropic both at 298 and 77 K with g values at 2.034 ± 0.010 and 2.040 ± 0.010, respectively indicating Mn(II) ion (3d) with a S = 5/2 spin. 1 shows a hyperfine structure with six strong absorptions, corresponding to the |-1/2, m> -> |1/2, m> 'allowed' transitions (?M = ±1, ?m = 0), and five pairs of 'forbidden' absorptions (?M = ±1, ?m = ±1), between the ?m = 0 hyperfine transitions in an organic solvent such as DMF, DMSO and CHCN. EPR spectroscopy and DFT calculations suggest that in the temperature range 77-298 K 2 presents a high-spin S = 3/2 state, whereas the low-spin state S = 1/2 begins to be populated at temperatures higher than 77 K (liquid nitrogen temperature). In 3, the weak signal due to a small amount of an octahedral Ni(III) complex (NiL), is characterized by a rhombic spectrum. DFT simulations on 4 indicate that the octahedral structure with a cis arrangement of the two water ligands is more stable than the octahedral one with a trans arrangement and the tetrahedral geometry.

Synthesis, crystal structures, EPR and DFT studies of first row transition metal complexes of lignin model compound ethylvanillin

Ugone Valeria;
2017

Abstract

The transition metal complexes of ethylvanillin [Mn(L)(HO)] (1), [Co(L)(HO)] (2), [Ni(L)(HO)] (3), and [Zn(L)(HO)] (4) have been synthesized. The geometric and electronic structure of 1, 2, 3 and 4 has been solved by X-ray diffraction analysis and EPR spectroscopy. They are octahedral complexes with a cis arrangement of the two water molecules. All the structures were calculated by DFT methods at the level of theory B3P86/6-311g. The EPR spectra of 1 are isotropic both at 298 and 77 K with g values at 2.034 ± 0.010 and 2.040 ± 0.010, respectively indicating Mn(II) ion (3d) with a S = 5/2 spin. 1 shows a hyperfine structure with six strong absorptions, corresponding to the |-1/2, m> -> |1/2, m> 'allowed' transitions (?M = ±1, ?m = 0), and five pairs of 'forbidden' absorptions (?M = ±1, ?m = ±1), between the ?m = 0 hyperfine transitions in an organic solvent such as DMF, DMSO and CHCN. EPR spectroscopy and DFT calculations suggest that in the temperature range 77-298 K 2 presents a high-spin S = 3/2 state, whereas the low-spin state S = 1/2 begins to be populated at temperatures higher than 77 K (liquid nitrogen temperature). In 3, the weak signal due to a small amount of an octahedral Ni(III) complex (NiL), is characterized by a rhombic spectrum. DFT simulations on 4 indicate that the octahedral structure with a cis arrangement of the two water ligands is more stable than the octahedral one with a trans arrangement and the tetrahedral geometry.
2017
Coordination complex
DFT
EPR
O-ligands
Transition metals
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/408639
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