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首页> 外文期刊>CERAMICS INTERNATIONAL >Synthesis of MFe2O4 (M = Mg2+, Zn2+, Mn2+) spinel ferrites and their structural, elastic and electron magnetic resonance properties
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Synthesis of MFe2O4 (M = Mg2+, Zn2+, Mn2+) spinel ferrites and their structural, elastic and electron magnetic resonance properties

机译:合成MFE2O4(M = Mg2 +,Zn2 +,MN2 +)尖晶石铁氧体及其结构,弹性和电子磁共振特性

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Structural, elastic and electron magnetic resonance investigations of spinel ferrites with the formula MFe2O4 (M = Mg2+, Zn2+, Mn2+) synthesized by the sol-gel auto-combustion method are reported here. XRD patterns revealed the co-existence of secondary phases along with the ferrite phase. The lattice parameter (8.301 angstrom, 8.366 angstrom and 8.434 angstrom) was found to be varying according to the ionic radii of cations. As determined by scanning electron microscopy (SEM), ZnFe2O4 has a comparatively narrow distribution of grain sizes (1.3-3.8 mu m) compared to those in MnFe2O4 (0.8-4.3 mu m) and MgFe2O4 (0.3-4.8 mu m). The estimated values of average crystallite sizes (17.5 nm, 21.3 nm and 23.3 nm) determined from the X-ray diffraction peaks are considerably less than the average grain sizes (1.3 mu m, 1.6 mu m and 2.7 mu m) estimated from the SEM histograms. The vibrational frequencies in FTIR spectra are in the conformity with the cubic spinel structure and their variation supports the variation of lattice parameter. Equal values of Poission's ratio (0.35) were obtained for the three systems which represent the isotropic behaviour of spinel ferrite systems. The exceptional low value of Lande's g-parameter for ZnFe2O4 indicates the dominance of Fe3+-O-Fe3+ superexchange interaction. Though cation redistribution is possible in the present ferrite systems, the secondary phases existed in these ferrite systems are predominantly influencing the structural, elastic and electron magnetic resonance properties.
机译:在此报道通过溶胶 - 凝胶自动燃烧方法合成的式MFE2O4(M = Mg2 +,Zn2 +,MN2 +,MN2 +)的尖晶石铁氧体的结构,弹性和电子磁共振研究。 XRD图案揭示了二次阶段的共存以及铁氧体相。根据阳离子的离子半径,发现晶格参数(8.301埃,8.366埃和8.434埃埃斯特罗姆)变化。通过扫描电子显微镜(SEM)测定,与MNFE2O4(0.8-4.3μm)和MgFe 2 O 4(0.3-4.8μm)相比,ZnFe2O4具有比较窄的晶粒尺寸(1.3-3.8μm)的分布(1.3-3.8μm)。从X射线衍射峰确定的平均微晶尺寸(17.5nm,21.3nm和23.3nm)的估计值显着小于SEM估计的平均晶粒尺寸(1.3μm,1.6μm和2.7μm)直方图。 FTIR光谱中的振动频率符合立方尖晶石结构,并且它们的变化支持晶格参数的变化。对于代表尖晶石铁氧体系统的各向同性行为的三种系统,获得了额外的遗传率(0.35)的等值。 ZnFe2O4的Lande的G-参数的卓越低值表示Fe3 + -o-Fe3 +超速相互作用的主导。尽管在本铁氧体系统中可以进行阳离子再分配,但是这些铁氧体系统中存在的二次相主要影响结构,弹性和电子磁共振性能。

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