• Understanding, Controlling and Programming Cooperativity in Self-assembled Polynuclear Complexes in Solution
    T. Riis-Johannessen, N. Dalla Favera, T.K. Todorova, S.M. Huber, L. Gagliardi and C. Piguet
    Chemistry - A European Journal, 15 (46) (2009), p12702-12718
    DOI:10.1002/chem.200900904 | unige:4122 | Abstract | Article HTML | Article PDF
Deviations from statistical binding, that is cooperativity, in self-assembled polynuclear complexes partly result from intermetallic interactions ΔEM,M, whose magnitudes in solution depend on a balance between electrostatic repulsion and solvation energies. These two factors have been reconciled in a simple point-charge model, which suggests severe and counter-intuitive deviations from predictions based solely on the Coulomb law when considering the variation of ΔEM,M with metallic charge and intermetallic separation in linear polynuclear helicates. To demonstrate this intriguing behaviour, the ten microscopic interactions that define the thermodynamic formation constants of some twenty-nine homometallic and heterometallic polynuclear triple-stranded helicates obtained from the coordination of the segmental ligands L1-L11 with Zn2+ (a spherical d-block cation) and Lu3+ (a spherical 4f-block cation), have been extracted by using the site binding model. As predicted, but in contrast with the simplistic coulombic approach, the apparent intramolecular intermetallic interactions in solution are found to be i) more repulsive at long distance (ΔELu,Lu1-4 > ΔELu,Lu1-2), ii) of larger magnitude when Zn2+ replaces Lu3+ (ΔEZn,Lu1-2 > ΔELu,Lu1-2) and iii) attractive between two triply charged cations held at some specific distance (ΔELu,Lu1-3 < 0). The consequences of these trends are discussed for the design of polynuclear complexes in solution.
  • Towards inert and pre-organized d-block-containing receptors for trivalent lanthanides: The synthesis and characterization of triple-helical monometallic OsII and bimetallic OsII-LnIII complexes
    T. Riis-Johannessen, N. Dupont, G. Canard, G. Bernardinelli, A. Hauser and C. Piguet
    Dalton Transactions, 28 (2008), p3661-3677
    DOI:10.1039/b718885d | unige:3572 | Abstract | Article HTML | Article PDF

The mononuclear OsII complex [Os( L1)3](PF6)2 ( L1 = 5-methyl(1-methylbenzimidazol-2-yl)pyridine) is an obvious candidate for the design of an inert d-block-based tripodal receptor capable of binding and photosensitizing trivalent lanthanides (LnIII). It has thus been prepared and its two enantiomeric meridional (Δ-mer and Λ-mer) and facial (rac-fac) isomers have been separated by ion-exchange chromatography. The optical isomers have been characterized by CD spectroscopy and assignments of absolute configuration confirmed by an X-ray crystallographic study of Λ-mer-[Os( L1)3](PF6)2·1.5MeCN (monoclinic, P21, Z = 4). Comparison of the latter structure with that of racemic fac-[Os( L1)3](PF6)2 (monoclinic, C2/c, Z = 8) and [Os(bipy)3](PF6)2 (where bipy = 2,2' -bipyridine) shows minimal structural variations, but differences are observed in the photophysical and electrochemical properties of the respective compounds. Luminescence emissions from OsII complexes of L1 are typically lower in energy, with shorter lifetimes and lower quantum yields than their bipy analogues, whilst metal-centred oxidation processes are more facile due to the enhanced π-donor ability of L1. The key relationships between these parameters are discussed. Finally, though challenged by (i) the low reactivity of many osmium precursors and (ii) the irreversible formation of competing side products, the synthesis and purification of the heterobimetallic triple-stranded helicate HHH-[OsLu( L2)3](CF3SO3)5 has been realised, in which L2 is a segmental ligand containing the same bidentate unit as that found in L1 further connected to a tridentate binding site adapted for complexing LnIII. Its solid-state structure has been established by X-ray crystallography (triclinic, P1-, Z = 2).

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