Tuning magnetization, blocking temperature, cation distribution of nanosized Co0.2Zn0.8Fe2O4 by mechanical activation

被引:31
作者
Dey, S. [1 ]
Mondal, R. [1 ]
Dey, S. K. [1 ,2 ]
Majumder, S. [1 ]
Dasgupta, P. [3 ]
Poddar, A. [3 ]
Reddy, V. R. [4 ]
Kumar, S. [1 ]
机构
[1] Jadavpur Univ, Dept Phys, Kolkata 700032, India
[2] NITMAS, Dept Phys, Sarisha 743368, India
[3] Saha Inst Nucl Phys, Kolkata 700064, India
[4] UGC DAE CSR, Indore 452001, India
关键词
CANTED SPIN ARRANGEMENT; ZINC FERRITE; SUPERPARAMAGNETIC BEHAVIOR; NICKEL FERRITE; NANOPARTICLES; MOSSBAUER; ENHANCEMENT; HYDROLYSIS; DISORDER; CLUSTER;
D O I
10.1063/1.4930801
中图分类号
O59 [应用物理学];
学科分类号
摘要
The study on structural, microstructural, magnetic, and hyperfine properties of nanosized Co0.2Zn0.8Fe2O4 having particle size similar to 18 nm (CZM) synthesized by high energy ball milling of Co0.2Zn0.8Fe2O4 nanoparticles of size similar to 20 nm (CZ) produced by flow rate controlled coprecipitation method has revealed that the inclusion of strain induced anisotropy produced by mechanical treatment and escalation of oxygen mediated intersublattice exchange interaction of spinel ferrites by tuning cation distribution properly, can improve the magnetic quality of nanosized ferrites significantly. This upshot will be of immense help in promoting the technological application of nanostructured ferrites. The Rietveld refinement of powder x-ray diffraction pattern and the analysis of transmission electron micrographs, energy dispersive x-ray spectrum, and FTIR spectrum of the sample have confirmed that CZM is single phase cubic nanometric spinel ferrite of Fd (3) over barm symmetry and it possesses large microstrain within its crystal lattice. The dc magnetic and Mossbauer spectroscopic studies together with indicate that the particles in the sample are composed of ferrimagnetically aligned core and spin-glass like shell and the system behaves superparamagnetically at 300 K. The saturation magnetization (44 and 87 emu g(-1) at 300 and 10 K) and hyperfine field of the sample are substantially higher than its counterparts reported earlier. In spite of its lower size compared to CZ, the blocking temperature (similar to 220 K) of CZM is higher than that of CZ (70 K) and also that of its counterparts synthesized by chemical methods. The strengthening of the intersublattice A-O-B superexchange interaction because of migration of Fe3+ ions from octahedral [B] to tetrahedral (A) sites in lieu of the relocation of Zn2+ among (A) and [B] sites helps in enhancement of magnetization and hyperfine field of CZM. The giant coercivity (H-C similar to 5600 Oe at 10 K) of CZM is accounted by the presence of spin glass like surface layer in the sample. Moreover, the system exhibits striking memory effect which can be suitably utilized in storing binary bits (0, 1) through magnetic field change in the cooling cycle of magnetization versus temperature profile, and the stored binary coded number can be faithfully retrieved in the heating cycle. (C) 2015 AIP Publishing LLC.
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页数:11
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