| Literature DB >> 29435213 |
Jordan A DeGayner1, Ie-Rang Jeon1, T David Harris1.
Abstract
The ability of tetraazalene radical bridging ligands to mediate exceptionally strong magnetic exchangeEntities:
Year: 2015 PMID: 29435213 PMCID: PMC5802272 DOI: 10.1039/c5sc02725j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Redox series of deprotonated benzoquinonoid ligands. Left to right: EL4–, EL3–˙, EL2– (E = O and NR).
Scheme 2Synthesis of the compounds [(TPyA)2MII2(NMePhL2–)](BArF4)2 as observed in 2 (Mn), 3 (Fe), and 4 (Co).
Fig. 1Left–Right: Crystal structures of [(TPyA)2MII2(NMePhL2–)]2+ (M = Mn, Fe, Co), as observed in 2·0.4THF, 3·2.5THF, and 4·2.5THF. Cyan, orange, green, blue, and gray spheres represent Mn, Fe, Co, N, and C atoms, respectively; H atoms are omitted for clarity.
Fig. 2Oxidation of [(TPyA)2CrIII2(NMePhL3–˙)]3+, as observed in 5·2.9MeCN, to give [(TPyA)2CrIII2(NMePhL2–)]4+, as observed in 1. Purple, blue, and gray spheres represent Cr, N, and C atoms, respectively; H atoms are omitted for clarity.
Fig. 3Cyclic voltammograms for solutions of 2 (Mn, blue), 3 (Fe, red), and 4 (Co, green) in THF and 5 (Cr, purple) in MeCN using a scan rate of 0.1 V s–1.
Fig. 4Mössbauer spectra for 3 (upper) and 7′ (lower) taken at 80 K. Red and blue lines correspond to fits to high-spin FeII while the green line indicates a small amount of FeIII-containing impurity.
Fig. 5Variable-temperature dc magnetic susceptibility for 2 (Mn, blue), 3 (Fe, red), and 4 (Co, green) collected under an applied field of 1 T. Black lines indicate fits to data.
Summary of parameters obtained from fits and simulations of magnetic data
|
| [(TPyA)2M2(L2–)] | [(TPyA)2M2(L3–˙)]( | |
| M = CrIII |
| — | –626(7) |
|
| — | +0.6 | |
| M = MnII |
| –1.64(1) | –157(7) |
|
| — | +0.4 | |
| M = FeII |
| –2.16(2) | –307(9) |
|
| — | –13.8 | |
| M = CoII |
| >0 | –396(16) |
|
| — | –10.7 | |
These values of D were obtained from fitting reduced magnetization data.
No fit was obtained for these data.
Fig. 6Variable-temperature dc magnetic susceptibility for 5 (Cr, purple), 6 (Mn, blue), 7 (Fe, red), and 8 (Co, green) and under an applied field of 1 (6–8) or 2 (5) T. Black lines represent simulations to the data.
Fig. 7Spin ladder showing the lowest spin energy levels for compounds 2, 3, and 5–8, as calculated from fits or simulations of the magnetic susceptibility data. Purple, blue, red, and green lines correspond to M = Cr, Mn, Fe, and Co, respectively.
Fig. 8Linear relationship between mean M–NL bond distance for 1–4 and the obtained magnitude of metal–ligand radical exchange constant |J| in 5–8.
Fig. 9Left: Variable-frequency out-of-phase ac susceptibility data for 7. Right: Arrhenius plot of relaxation time, with a fit to linear region giving Ueff = 52(1) cm–1.