Enantiopure mono- and mixed-valence multinuclear cobalt complexes from amino alcohol based ligands

dc.contributor.author Pradeep, Chullikkattil P.
dc.contributor.author Zacharias, Panthapally S.
dc.contributor.author Das, Samar K.
dc.date.accessioned 2022-03-27T08:44:00Z
dc.date.available 2022-03-27T08:44:00Z
dc.date.issued 2007-12-18
dc.description.abstract Chiral amino alcohol based tridentate Schiff bases, derived from 5-OMe-, 5-H-, and 5-NO2-substituted salicylaldehydes and (S)-(+)-2- phenylglycinol and (S)-(-)-2-amino-3-phenyl-1-propanol, were found to act as versatile ligands in their coordination behavior towards cobalt and gave a range of complexes like mononuclear low-spin CoIII complexes, mixed-valence trinuclear CoIII-CoII-CoIII complexes, and a mixed-valence tetranuclear (CoIII) 3CoII complex on 1:1 molar ratio reaction with Co(CH 3COO)2·4H2O in methanol at room temperature. The steric and electronic properties of these ligands are found to control the overall geometry and nuclearity of the resulting complexes. 5-OMe-Substituted ligands (H2L1 and H2L 2) gave mononuclear low-spin CoIII complexes [CoL 1(HL1)]·0.25DMF (1) and [CoL2(HL 2)]·0.25DMF (2). Single-crystal X-ray structure analysis of complex 2 revealed that the relevant complex crystallizes with four mononuclear units in the asymmetric unit (Z′ = 4), and these units self-assemble through O-H⋯O hydrogen-bonding interactions resulting in the formation of homochiral supramolecular helices in the crystal lattice. The 5-H- and 5-NO2-substituted ligands (H2L3, H 2L4, H2L5) afforded mixed-valence trinuclear CoIII-CoII-CoIII complexes [Co(CoL32)2·H2O] ·2DMF·2H2O (3), [Co(CoL42) 2·H2O]·2DMF·H2O (4), and [Co(CoL52)2·DMF]· 2DMF·H2O (5), respectively. Crystal structure analyses of complexes 3 and 5 revealed rare trinuclear geometries of these complexes, in which two terminal octahedral low-spin CoIII complexes act as chelating ligands for a central high-spin CoII center through alkoxide bridging. For steric reasons, the central cobalt adopts a highly distorted geometry in these complexes viz. distorted trigonal bipyramidal in complex 3 and distorted square planar in complex 5. The ligand H 2L6 gave an interesting tetranuclear mixed-valence complex, H[Co(CoL62)3]·H2O (6), in which three octahedral low-spin CoIII complexes act as ligands for a central high-spin CoII center in distorted trigonal prismatic geometry. Interestingly, the three types (mononuclear: 1, 2; trinuclear: 3, 4, 5; tetranuclear: 6) of complexes showed large variations in their nuclearity and overall geometry despite the fact that the experimental conditions for all these complexes were identical. This fact highlights the influence of different substitutions on ligands in determining the final geometry of the resulting complexes in these reactions. Complexes 1-6 were characterized by elemental and routine spectral analyses. Compounds 2, 3, 5, and 6 have been unequivocally characterized by single-crystal X-ray structure determinations as well. Chiral properties of these complexes were confirmed by circular dichroism (CD) spectral studies. © Wiley-VCH Verlag GmbH & Co. KGaA, 2007.
dc.identifier.citation European Journal of Inorganic Chemistry
dc.identifier.issn 14341948
dc.identifier.uri 10.1002/ejic.200700834
dc.identifier.uri https://onlinelibrary.wiley.com/doi/10.1002/ejic.200700834
dc.identifier.uri https://dspace.uohyd.ac.in/handle/1/11636
dc.subject Chiral amino alcohols
dc.subject Chiral complexes
dc.subject Cobalt
dc.subject Ligand-controlled nuclearity
dc.subject Supramolecular chemistry
dc.title Enantiopure mono- and mixed-valence multinuclear cobalt complexes from amino alcohol based ligands
dc.type Journal. Article
dspace.entity.type
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