| Literature DB >> 30090276 |
Raúl Díaz-Torres1, Melita Menelaou1, Olivier Roubeau2, Alessandro Sorrenti3, Guillem Brandariz-de-Pedro1, E Carolina Sañudo4, Simon J Teat5, Jordi Fraxedas6, Eliseo Ruiz1,7, Núria Aliaga-Alcalde8.
Abstract
This work introduces a novel family of CoII species having aEntities:
Year: 2016 PMID: 30090276 PMCID: PMC6054041 DOI: 10.1039/c5sc03298a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1A general drawing of a symmetric CCMoid (left) and the ligand 9Accm (right) in their enol forms.
Fig. 1POV-Ray view of 1 with thermal ellipsoids fixed at 30%. Protons are omitted for the sake of simplification. Color legend: Co in magenta, O in red, N in blue and C in grey.
Fig. 2POV-Ray view of 2 with thermal ellipsoids fixed at 50%. Protons as well as the lattice chloroform molecule are omitted for clarity. Color legend: Co in magenta, O in red, N in blue and C in grey.
Fig. 3(a) 1H NMR spectrum of 1 in CDCl3 between 5–70 ppm. (b) 1H NMR spectrum of 2 in CDCl3 between 30–100 ppm. The white spheres relate to protons from py (a) or 2,2′-bpy (b) and the black spheres relate to coordinated 9Accm. *CDCl3 and [lozenge or total mark]TMS.
Fig. 4(a) Emission spectra of 1 (orange) and 2 (green) in distilled THF. (b) Emission spectra of 2 in distilled CH2Cl2 (brown) and THF (green).
φ stands for quantum yield. Values of D and E (all in cm–1) for the S = 3/2 ground state of compounds 1 and 2 calculated with CASSCF and NEVPT2 (values in parentheses) methods (see Computational details section). The last two columns give the first excitation energy δ and Δ (in cm–1) without and after including spin–orbit effects, respectively. The Δ value corresponds to the energy difference between the ground and excited Kramers′ doublets
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| 0.0010 | 74.1 | 1.21 | 2.26 | 167.1 (146.5) | 24.0 (25.6) | 405 (463) | 227 (214) |
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| 0.0014 | 24.1 | –1.89 | 2.39 | 71.6 (50.2) | 7.8 (6.8) | 775 (1095) | 152 (113) |
Fig. 5χ M T vs. T graphs and insets, M/NμBvs. H/T and M/NμBvs. H data, for 1 (a) and 2 (b). Experimental data are shown as dots and the resulting fitting is shown by a line.
Fig. 6Frequency dependence of the out-of-phase (χ′′Mvs. ν) susceptibility for 1 (a) and 2 (b) under 1500 and 700 Oe dc fields, respectively.
Fig. 7Cole–Cole plots of 1 (a) and 2 (b) measured from 1.9 to 5.0 K under 1500 and 700 Oe dc fields, respectively.
Fig. 8τ –1 vs. T plots of 1 (■) and 2 (□) measured from 1.9 to 5.0 K under 1500 and 700 Oe dc fields, respectively.
Fig. 9Experimental UPS (ultra-violet photo-emission spectroscopy) density of states spectra of a spin-coated film of 2 on HOPG (red) and of a freshly cleaved HOPG surface (black) compared to the DFT calculated spectrum (blue). The high-resolution UPS spectra were acquired with a pass energy of 5 eV in UHV and at room temperature. The binding energies are referred to the Fermi level of the system (EF = 0 eV). The spectra have been normalized to their maxima and shifted in the vertical scale for clarity. The DFT calculated DOS spectrum has been shifted by 3.1 eV in order to level the HOMO. Vertical green lines have been included to guide the eye comparing experimental and calculated bands.