Nanocomposites Based on Pyrolyzed Polyacrylonitrile Doped with FeCoCr/C Transition Metal Alloy Nanoparticles: Synthesis, Structure, and Electromagnetic Properties

Author:

Zaporotskova Irina1,Muratov Dmitriy23ORCID,Kozhitov Lev3,Popkova Alena4,Boroznina Natalia1,Boroznin Sergey1,Vasiliev Andrey23ORCID,Tarala Vitaly5,Korovin Evgeny6

Affiliation:

1. Volgograd State University, Universitetskii Prospect, 100, Volgograd 400062, Russia

2. Institute of Petrochemical Synthesis A.V. Topchiev, Russian Academy of Sciences, Leninsky Prospekt, 29, Moscow 119991, Russia

3. National Research Technological University “MISIS”, Leninsky Prospekt, 4, Moscow 119049, Russia

4. JSC Research Institute of NPO “LUCH”, 24 Zheleznodorozhnaya Str., Podolsk 142103, Russia

5. North Caucasus Federal University, Pushkin Str., 1, Stavropol 355017, Russia

6. National Research Tomsk State University, Ave. Lenin, 36, Tomsk 634050, Russia

Abstract

In the last decade, the development of new materials that absorb electromagnetic radiation (EMR) has received research interest as they can significantly enhance the performance of electronic devices and prevent adverse effects caused by electromagnetic pollution. Electromagnetic radiation absorbers with a low weight and small thickness of the absorber layer, good absorption capacity, and a wide frequency response bandwidth are highly demanded. Here, for the first time, the properties of polymer nanocomposites FeCoCr/C synthesized by doping FeCoCr alloy nanoparticles into a polymer matrix of pyrolyzed polyacrylonitrile are investigated. An analysis of the magnetic properties of FeCoCr/C nanocomposites showed that increasing the synthesis temperature increased the specific magnetization and coercive force values of the FeCoCr/C nanocomposites. The dependence between the ratio of metals in the precursor of pyrolyzed polyacrylonitrile and the electromagnetic and wave-absorbing properties of FeCoCr/C nanocomposites is considered, and the results of complex dielectric and magnetic permeability measurements are analyzed. It is found that the most promising of all the studied materials are those obtained at T = 700 °C with the ratio of metals Fe:Co:Cr = 35:35:30.

Funder

Ministry of Science and Higher Education of the Russian Federation

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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