| Literature DB >> 30842825 |
Dimitris I Alexandropoulos1, Kuduva R Vignesh1, Theocharis C Stamatatos2, Kim R Dunbar1.
Abstract
A rare disk-like single-molecule magnet (SMM) exclusively bridged by end-on azides with a spin ground state of S = 14 was prepared by the reaction of a divalentEntities:
Year: 2018 PMID: 30842825 PMCID: PMC6368239 DOI: 10.1039/c8sc04384a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Labelled representation of the cation in complex 1 (top), a side view of the {Fe7} cluster (middle), and a packing diagram of the cations, viewed along the crystallographic c-axis (bottom). Color scheme: FeII yellow, N blue, C dark gray, H light gray. Symmetry operation for the primed atoms: 1 – x, –y, 1 – z.
Fig. 2Temperature dependence of χMT for 1-d at 0.1 T. (inset) Magnetization (M) versus field (H) and temperature (T) data, plotted as reduced magnetization (M/NμB) versus H/T, for 1-d at applied fields of 1–7 T and in the 1.8–5 K temperature range.
Fig. 3(top) Out-of-phase (χΜ′′) ac magnetic susceptibility signals for 1-d at zero dc field. (inset) χΜ′′ versus T plot at a representative ac frequency of 933 Hz showing the two separate relaxation processes at two different T regions; the solid blue lines represent fits of the data. (middle) Frequency dependence of the χΜ′′ component at different temperatures (2.5–5.0 K) for 1-d at zero dc field; the solid lines are the best fits to the generalized Debye model. (bottom) Arrhenius plot of the relaxation times (τ) for 1-d; the blue and red lines correspond to the fit of the high- and low-T regions, respectively.
Fig. 4(top) Out-of-phase (χΜ′′) ac magnetic susceptibility signals for 1-w at zero dc field; the solid lines are guides for the eye. (middle) Frequency dependence of χΜ′′ at different temperatures for 1-w at zero dc field; the solid lines are best fits to the generalized Debye model. (bottom) Arrhenius plot of τ versus 1/T for 1-w; the solid line is the best fit as described in the text.
Fig. 5(left) Magnetic exchange pathways in complex 1; see the text for the DFT computed values. (right) DFT-computed spin–density plots for 1 for which all spins are up, rationalizing the experimental S = 14 ground state. The pink and blue colours represent positive and negative spin densities, respectively.