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Mössbauer and magnetic studies of Mg1+2xSbxFe2−3xO4 spinel ferrites

Spinel-related Mg1+2xSbxFe2−3xO4 samples (x = 0.0, 0.05, 0.10, 0.15, 0.20, and 0.30) prepared using the conventional double sintering technique were investigated using 57Fe Mössbauer spectroscopy and magnetic measurements. Mössbauer spectra favor a cationic distribution of the form (MgδFe1−δ)A[Mg1+2...

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Published in:Materials chemistry and physics 2013-06, Vol.140 (1), p.97-103
Main Authors: Widatallah, H.M., Al-Mamari, F.A.S., Al-Saqri, N.A.M., Gismelseed, A.M., Al-Omari, I.A., Al-Shahumi, T.M.H., Alhaj, A.F., Abo El Ata, A.M., Elzain, M.E.
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Language:English
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Summary:Spinel-related Mg1+2xSbxFe2−3xO4 samples (x = 0.0, 0.05, 0.10, 0.15, 0.20, and 0.30) prepared using the conventional double sintering technique were investigated using 57Fe Mössbauer spectroscopy and magnetic measurements. Mössbauer spectra favor a cationic distribution of the form (MgδFe1−δ)A[Mg1+2x−δSbxFe1+δ−3x]BO4 among the tetrahedral-A and octahedral-B sites of the spinel structure. The cation distribution parameter (δ) was found to vary with the Sb5+ concentration (x). The Mössbauer hyperfine magnetic fields at both sites and the Curie temperatures of the ferrites decrease as x increases. This was attributed to gradual weakening in the magnetic exchange interaction as more Fe3+ ions are substituted by diamagnetic Sb5+ and Mg2+ ones. The sample with x = 0.30 exhibits short range magnetic order due to cationic clustering and/or superparamagnetism. The magnetization of all samples was found to be temperature-dependent implying that δ depends on temperature in addition to x. At low temperatures the substituted ferrites (x ≠ 0.0) unexpectedly exhibit higher magnetization values relative to that of the pure ferrite MgFe2O4. This behavior, while at variance with the Néel's model for ferrimagnetism, is explicable in terms of the spin canting mechanism proposed in the Yafet–Kittel model. ► A Mössbauer and magnetic study of Sb5+ and Mg2+ co-substituted ferrites of the composition Mg1+2xSbxFe2−3xO4 is reported. ► The cation distribution in Mg1+2xSbxFe2−3xO4 is shown to depend on both the Sb5+ ionic concentration and the temperature. ► The A–B magnetic exchange interaction and Mössbauer hyperfine fields weaken with increasing Sb5+ and Mg2+ concentrations. ► The magnetization of the substituted samples with x ≠ 0.00 increases at low temperatures relative to that of pure MgFe2O4. ► The magnetic properties were found to be explicable using the Yafet–Kittle model rather than the Néel's collinear model.
ISSN:0254-0584
1879-3312
DOI:10.1016/j.matchemphys.2013.03.005