Investigation of Structural, Magnetic and Microwave Absorption Properties of Nixco1-xfe2o4/Ni:zno (x:0.0, 0.5, and 1.0) Embedded Epoxy Composites

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2022

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Springer Heidelberg

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Green Open Access

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Abstract

In this study, NixCo1-xFe2O4/Ni:ZnO (x:0.0, 0.5, and 1.0) epoxy-based composite structures were manufactured by sol-gel method. The structural, morphological and magnetic characteristics were investigated using X-ray diffraction (XRD), scanning electron microscopy (SEM) and vibrating sample magnetometer (VSM). Electromagnetic wave (EMW) absorption measurements were carried out using a vector network analyzer (VNA) between 8 and 12 GHz (X band). Ni substitution with Co decreases the crystallite size, average particle size, magnetic saturation (M-s) and the coercive field (H-c) values of cobalt-ferrite spinel structure. EMW characterization results showed that minimum reflection loss (RL) - 30.91 dB (99.9% absorption) at 10.76 GHz, and the maximum bandwidth of 1.81 GHz were observed for the RAM1 composite. In addition, the substitution of Ni2+ into the cobalt-ferrite structure resulted in the shifting absorption peaks to the higher frequency region (towards K-u band).

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Keywords

Radar, Electromagnetic wave, Absorption, Composite, Structural characteristics, Materials Science, Composite, Electric Network Analyzers, Epoxy composite, Crystallite size, Sol- gel methods, Absorption, Magnetic absorption, Electric network analyzers, Electromagnetic wave, Magnetic characteristic, Shielding, Zinc oxide, X- ray diffractions, Effective Bandwidth, Radar, Electromagnetic waves, Physics, Epoxy-based, Electrical Engineering, Electronics & Computer Science - Wireless Technology - Microwave Absorption, Circular waveguides, Ferrite, II-VI semiconductors, Composites structures, Cobalt, Particle size, Microwave absorption properties, Morphological characteristic, Sols, Scanning electron microscopy

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02 engineering and technology, 01 natural sciences, 0104 chemical sciences, 0210 nano-technology

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Q2

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Q2
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Source

Applied Physics A-Materials Science & Processing

Volume

128

Issue

9

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Scopus : 2

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2

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1

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