Cr super(3+)-substitution induced structural reconfigurations in the nanocrystalline spinel compound ZnFe sub(2)O sub(4) as revealed from X-ray diffraction, positron annihilation and Mossbauer spectroscopic studies
In an earlier work, the substitution of Zn super(2+) ions at the tetrahedral sites of nanocrystalline zinc ferrite (ZnFe sub(2)O sub(4)) by Ni super(2+) ions had been observed to cause a transformation from the normal spinel structure to the inverse one. The present study has been undertaken to expl...
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Veröffentlicht in: | RSC advances 2015-07, Vol.5 (80), p.64966-64975 |
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Sprache: | eng |
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Zusammenfassung: | In an earlier work, the substitution of Zn super(2+) ions at the tetrahedral sites of nanocrystalline zinc ferrite (ZnFe sub(2)O sub(4)) by Ni super(2+) ions had been observed to cause a transformation from the normal spinel structure to the inverse one. The present study has been undertaken to explore the possibility of a similar change when the Fe super(3+) ions at the octahedral sites are replaced by Cr super(3+) ions. Concomitant lattice contraction and a steady decrease of the sizes of the nanocrystallites preceded and then resulted into the inversion of ZnFe sub(2-x)Cr sub(x)O sub(4) from normal spinel to inverse at x greater than or equal to 0.8. Positron lifetime and coincidence Doppler broadening spectroscopic studies were carried out on the samples and a distinct third positron lifetime component emerged in the range of Cr super(3+) concentration 0.8 less than or equal to x less than or equal to 1.6. The new positron trapping sites were the result of the inversion of the spinel structure wherein the Cr super(3+) ions which substituted the Fe super(3+) ions at the octahedral sites got shifted to the tetrahedral sites, interchanging their positions with the Zn super(2+) ions. The incomplete success of inversion led to the generation of vacancy-type defects, which significantly trapped the positrons and the changes in their lifetimes indicated the occurrence of the process. The continued lattice contraction ensured an inverted spinel structure even for the final ZnCr sub(2)O sub(4), which in coarse-grained form and at room temperature is a normal spinel. Mossbauer spectroscopic studies also supported the idea of spinel inversion above x= 0.8 through definite changes in the isomer and quadrupole shifts. |
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ISSN: | 2046-2069 |
DOI: | 10.1039/c5ra04516a |