4.8 Article

A Mononuclear Fe(III) Single Molecule Magnet with a 3/2⇆5/2 Spin Crossover

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 134, 期 33, 页码 13651-13661

出版社

AMER CHEMICAL SOC
DOI: 10.1021/ja302660k

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资金

  1. Chemical Sciences, Geosciences, and Biosciences Division, Office of Basic Energy Science, Office of Science, U.S. Department of Energy [DE-FG02-07ER15893]
  2. Alexander von Humboldt Stiftung through Friedrich Bessel Research Award
  3. Deutsche Forschungsgemeinschaft [DFG SFB 583]
  4. University of Erlangen
  5. Danish Council for Independent Research: Technology and Production
  6. DOE Office of Biological and Environmental Research
  7. National Institutes of Health, National Center for Research Resources [P41RR001209]
  8. Natural Sciences and Engineering Research Council of Canada
  9. National Research Council Canada
  10. Canadian Institutes of Health Research
  11. Province of Saskatchewan, Western Economic Diversification Canada
  12. University of Saskatchewan

向作者/读者索取更多资源

The air stable complex [(PNP)FeCl2] (1) (PNP = N[2-P(CHMe2)(2)-4-methylphenyl](2)(-)), prepared from one-electron oxidation of [(PNP)FeCl] with ClCPh3, displays an unexpected S = 3/2 to S = 5/2 transition above 80 K as inferred by the dc SQUID magnetic susceptibility measurement The ac SQUID magnetization data, at zero field and between frequencies 10 and 1042 Hz, dearly reveal complex 1 to have frequency dependence on the out-of-phase signal and thus being a single molecular magnet with a thermally activated barrier of U-eff = 32-36 cm(-1) (47-52 K). Variable-temperature Mossbauer data also corroborate a significant temperature dependence in delta and Delta E-Q values for 1, which is in agreement with the system undergoing a change in spin state. Likewise, variable temperature X-band EPR spectra of 1 reveals the S = 3/2 to be likely the ground state with the S = 5/2 being close in energy. Multiedge XAS absorption spectra suggest the electronic structure of 1 to be highly covalent with an effective iron oxidation state that is more reduced than the typical ferric complexes due to the significant interaction of the phosphine groups in PNP and Cl ligands with iron. A variable temperature single crystal X-ray diffraction study of 1 collected between 30 and 300 K also reveals elongation of the Fe-P bond lengths and increment in the Cl-Fe-Cl angle as the S = 5/2 state is populated Theoretical studies show overall similar orbital pictures except for the d(z(2)) orbital, which has the most sensitivity to change in the geometry and bonding, where the quartet (B-4) and the sextet ((6)A) states are close in energy.

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