Magnetic and microwave absorption properties of Ni_(1-x)Zn_xFe_2O_4 nanocrystalline synthesized by s

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Ni1-xZnxFe2O4(0≤x≤1,in steps of 0.1) nanocrystallines were synthesized by sol-gel route.The doping effects of zinc on structural,magnetic and microwave absorption properties were investigated in detail.X-ray diffraction(XRD) results show that all the samples are single-phase spinel structure.The magnetic and microwave absorption properties are strongly dependent on the zinc content,which can be understood in terms of the cations redistribution in spinel tetrahedral and octahedral sites with the increase of zinc content.The magnetic measurement shows the antiferromagnetic nature of the samples for x=0.9 and x=1.0.The saturation magnetization reaches the maximum of 3.35μB/f.u.at x=0.5.The optimal reflection loss(RL) of-29.6 dB is found at 6.5 GHz for an absorber thickness of 5 mm.The RL values exceeding 10 dB are obtained for the absorber in the range of 3.9-8.9 GHz.These Ni1-xZnxFe2O4 nanocrystallines may be attractive candidates for electromagnetic wave absorption materials. Ni1-xZnxFe2O4 (0≤x≤1, in steps of 0.1) nanocrystallines were synthesized by sol-gel route. Doping effects of zinc on structural, magnetic and microwave absorption properties were investigated in detail. X-ray diffraction show that all the samples are single-phase spinel structure. The magnetic and microwave absorption properties are strongly dependent on the zinc content, which can be understood in terms of the cations redistribution in spinel tetrahedral and octahedral sites with the increase of zinc content. The measurement of the antiferromagnetic nature of the samples for x = 0.9 and x = 1.0. The saturation magnetization reaches the maximum of 3.35 μB / fuat x = 0.5. The optimal reflection loss (RL) of-29.6 dB is found at 6.5 GHz for an absorber thickness of 5 mm.The RL values ​​exceeded 10 dB are obtained for the absorber in the range of 3.9-8.9 GHz.These Ni1-xZnxFe2O4 nanocrystallines may be attractive candidates for electromagnetic wave absorption materials.
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