4.7 Article

Impedance engineered microwave absorption properties of Fe-Ni/C core-shell enabled rubber composites for X-band stealth applications

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 869, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2021.159360

Keywords

Nanocomposites; Core-shell alloys; Impedance matching; Reflection loss; Phase transition

Funding

  1. Defence Laboratory, Jodhpur

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A series of Fe-Ni nanocomposites were successfully synthesized using a wet-chemical method, and graphite wrapped Fe-Ni alloy nanoparticles in core-shell geometries were prepared. XRD studies revealed body-centered and face-centered cubic Fe-Ni alloy core particles, as well as hexagonal graphitic shell formation. Furthermore, a structural transition from bcc to fcc phase was observed with varying Ni concentration.
We report a simple, consistent, and economical wet-chemical method for synthesizing a series of Fe-Ni nanocomposites by varying Fe and Ni fractions. Further, graphite wrapped Fe-Ni alloy nanoparticles in core-shell geometries are prepared by calcination of nanocomposites at 900 degrees C under N-2 gas. XRD studies reveal body-centered and face-centered (bcc/fcc) cubic Fe-Ni alloy core particles and hexagonal graphitic shell formation. More interestingly, a structural transition from bcc to fcc phase is also investigated with varying Ni concentration. The microstructural studies demonstrate similar to 10 nm graphitic shells together with a nearly spherical similar to 40 nm diameter Fe-Ni metallic core. These magnetic alloys showed the variation in magnetization and coercive fields with alloy compositions. The Fe-Ni core-shell material with the maximum magnetization is used for fabricating rubber-based composites by varying filler loading in the range 60-80 wt%. The utility of Fe-Ni/C alloy and rubber composite is categorized in terms of electromagnetic impedance matching for the entire X-band (8.2-12.4 GHz) frequency range based on the filler concentration and absorber thickness for microwave absorption applications. These core-shell alloy systems may show potential for stealth of strategic targets because of their very low density (similar to 1.1 g/cc) and lesser thickness than conventional absorbers. (C) 2021 Published by Elsevier B.V.

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