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Synthesis, structure and electromagnetic properties of FeCoAl/C nanocomposites

https://doi.org/10.17073/1609-3577-2021-3-176-189

Abstract

Magnetic nanoparticles play an important role in rapidly developing advanced branches of science and industry, e.g. fabrication of magnetic storage media, synthesis of ferromagnetic liquids, medicine and chemistry. One problem faced in the usage of magnetic nanoparticles is their high chemical activity leading to oxidation in air and agglomeration. The chemical activity of magnetic nanoparticles stems from the contribution of their large specific surface to volume ratio. Carbon coating of nanoparticles reduces the interaction between nanoparticles. FeCoAl/C metal-carbon nanocomposites have been synthesized using IR pyrolysis of polymer / metal salt precursors. The effect of synthesis temperature (IR heating) in the range from 500 to 700 °C on the structure and composition of the nanomaterials has been studied. We show that the forming particles are the FeCoAl ternary solid solution with a FeCo based bcc lattice. An increase in the synthesis temperature from 500 to 700 °C leads to an increase in the coherent scattering region of three-component nanoparticles from 5 to 19 nm. An increase in the aluminum content from 20 to 30 % relative to Fe and Co results in an increase in the size of the nanoparticles to 15 nm but this also entails the formation of a Co based solid solution having an fcc lattice. An increase in the nanocomposite synthesis temperature and a growth of the relative Al content as a result of a more complete carbonization and the structure-building effect of metals reduce the degree of amorphousness of the nanocomposite carbon matrix and lead to the formation of graphite-like phase crystallites having an ordered structure. The effect of synthesis temperature and relative content of metals on the electromagnetic properties (complex dielectric and magnetic permeability) of the synthesized nanocomposites has been studied. Synthesis conditions affect the radio absorption properties of the nanocomposites, e.g. reflection loss (RL) in the 3—13 GHz range.

About the Authors

D. G. Muratov
A.V. Topchiev Institute of Petrochemical Synthesis, RAS; National University of Science and Technology MISiS
Russian Federation

29 Leninsky Ave., Moscow 119991,

4 Leninsky Ave., Moscow 119049

Dmitriy G. Muratov — Cand. Sci. (Eng.), Leading Researcher; Associate Professor



L. V. Kozhitov
National University of Science and Technology MISiS
Russian Federation

4 Leninsky Ave., Moscow 119049

Lev V. Kozhitov — Dr. Sci. (Eng.), Professor



E. V. Yakushko
National University of Science and Technology MISiS
Russian Federation

4 Leninsky Ave., Moscow 119049

Egor V. Yakushko — Cand. Sci. (Eng.), Associate Professor



A. A. Vasilev
A.V. Topchiev Institute of Petrochemical Synthesis, RAS; National University of Science and Technology MISiS
Russian Federation

29 Leninsky Ave., Moscow 119991,

4 Leninsky Ave., Moscow 119049

Andrey A. Vasilev — Junior Researcher; Assistant



A. V. Popkova
JSC “Research Institute NPO” LUCH”
Russian Federation

24 Zheleznodorozhnaya Str., Podolsk, 142103

Alena V. Popkova — Senior Researcher



V. A. Tarala
North Caucasus Federal University
Russian Federation

1 Pushkin Str., Stavropol 355017

Vitaly А. Tarala — Cand. Sci. (Chem.), Senior Researcher



E. Yu. Korovin
Institute of Physical Materials Science, Siberian Branch of the Russian Academy of Sciences; Tomsk State University
Russian Federation

6 Sakhyanova Str., Ulan-Ude 670047, Republic of Buryatia,

36 Lenin Ave., Tomsk 634050

Evgeniy Yu. Korovin — Cand. Sci. (Phys.-Math.)



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Muratov D.G., Kozhitov L.V., Yakushko E.V., Vasilev A.A., Popkova A.V., Tarala V.A., Korovin E.Yu. Synthesis, structure and electromagnetic properties of FeCoAl/C nanocomposites. Izvestiya Vysshikh Uchebnykh Zavedenii. Materialy Elektronnoi Tekhniki = Materials of Electronics Engineering. 2021;24(3):176-189. (In Russ.) https://doi.org/10.17073/1609-3577-2021-3-176-189

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