Abstract

Middle infrared absorption, Raman scattering and proton magnetic resonance relaxation measurements were performed for [Zn(NH 3) 4](BF 4) in order to establish relationship between the observed phase transitions and reorientational motions of the NH 3 ligands and BF 4 − anions. The temperature dependence of spin-lattice relaxation time ( T 1( 1H)) and of the full width at half maximum (FWHM) of the bands connected with ρ r(NH 3), ν 2(BF 4) and ν 4(BF 4) modes in the infrared and in the Raman spectra have shown that in the high temperature phase of [Zn(NH 3) 4](BF 4) 2 all molecular groups perform the following stochastic reorientational motions: fast ( τ R ≈10 −12 s) 120° flips of NH 3 ligands about three-fold axis, fast isotropic reorientation of BF 4 − anions and slow ( τ R ≈10 −4 s) isotropic reorientation (“tumbling”) of the whole [Zn(NH 3) 4] 2+ cation. Mean values of the activation energies for uniaxial reorientation of NH 3 and isotropic reorientation of BF 4 − at phases I and II are ca. 3 kJ mol −1 and ca. 5 kJ mol −1, respectively. At phases III and IV the activation energies values for uniaxial reorientation of both NH 3 and of BF 4 − equal to ca. 7 kJ mol −1. Nearly the same values of the activation energies, as well as of the reorientational correlation times, at phases III and IV well explain existence of the coupling between reorientational motions of NH 3 and BF 4 −. Splitting some of the infrared bands at T C2=117 K suggests reducing of crystal symmetry at this phase transition. Sudden narrowing of the bands connected with ν 2(BF 4), ν 4(BF 4) and ρ r(NH 3) modes at T C3=101 K implies slowing down ( τ R ⪡10 −10 s) of the fast uniaxial reorientational motions of the BF 4 − anions and NH 3 ligands at this phase transition.

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