6533b83afe1ef96bd12a789c

RESEARCH PRODUCT

Mössbauer effect study of the electronic ground state of iron(II) in [57FexM1−x(bipy)3](ClO4)2 (M = Mn, Ni, Zn) and [57FexM1−x(phen)3](ClO4)2 (M = Ni, Zn) at very lowiron concentrations

P. GütlichH. KöppenK. Bode

subject

Ionic radiusSpin statesChemistryInorganic chemistryAnalytical chemistryQuadrupole splittingInorganic ChemistryMetalSpin crossovervisual_artMössbauer spectroscopyMaterials Chemistryvisual_art.visual_art_mediumPhysical and Theoretical ChemistryGround stateSolid solution

description

Earlier work in our laboratory on the effect of metal dilution on the 5T2(Oh ⇌ 1A1(Oh) equilibrium in polycrystalline spin crossover systems of iron(II) has shown that the relative stability of the high spin state, 5T2(Oh), at a given temperature, increases markedly with decreasing iron concentration. These results have initiated the present work. Using 57Fe Mossbauer spectroscopy, we have investigated the electronic ground state of iron(II) in the highly diluted solid solutions [FexM1−xL3] with L = bipy, M = Mn, Ni, Zn, x ≲ 0.005 and L = phen, M = Ni, Zn, x ≲ 0.005. Although the critical field potential (Vc) of the pure iron complexes, which are known to be low spin, is reported to be not far from the crossover point Vc = P (P, the mean spin pairing energy), the effect of metal dilution does not reduce the difference ¦ Vc - P ¦ sufficiently as to thermally populate the 5T2(Oh) state at room temperature to any noticeable extent. ¦ Vc - P ¦ has been estimated to be ≳ 1200 cm−1. The quadrupole splitting and the resonance line width are nearly the same in the pure compounds and the solid solutions. The isomer shift, however, is found to increase slightly in the order M = Fe < Ni < Zn < Mn, and parallels the increase in the ionic radii of the M++ host ions.

https://doi.org/10.1016/s0020-1693(00)88927-6