Aspects of the directional synthesis of carbon nanotubes to create hierarchical radio-absorbing composite materials
https://doi.org/10.20914/2310-1202-2018-4-337-343
Abstract
About the Authors
A. V. ShchegolkovRussian Federation
Cand. Sci. (Engin.), associate professor, department of technique and production technology of nanoproducts, Technical University, Sovetskaya str., 106,
A. V. Shchegolkov
graduate student, department of technique and production technology of nanoproducts, Technical University, Sovetskaya, 106
I. D. Parafimovich
junior researcher, laboratoty of elioniks, Kurchatova Av., 7, 220045, Belarus
E. A. Burakova
Cand. Sci. (Engin.), associate professor, department of technique and production technology of nanoproducts, Sovetskaya, 106, Tambov, 392000, Russia
A. V. Kobelev
Cand. Sci. (Engin.), associate professor, department of electrical power engineering, Sovetskaya str., 106, Tambov, 392000, Russia
T. P. Dyachkova
Dr. Sci. (Chem.), professor, department of technique and production technology of nanoproducts, Sovetskaya str., 106, Tambov, 392000, Russia
References
1. Smirnov D.O. Kompozicionnye radiopoglosh-chayushchie materialy na osnove ferrimagnitnyh soedinenij [Composite radio-absorbing materials on the basis of ferrimagnetic compounds]. Moscow, 2009. 176 p. (in Russian).
2. Abrashova E.V., Gracheva I.E., Moshnikov V.A. Functional nanomaterials based on metal oxides with hierarchical structure. Journal of Physics: Conference Series. 2013. vol. 461. no. 1. pp. 012019. doi: 10.1088/1742–6596/461/1/012019
3. Kovneristiy Yu.K., Lazareva I.Yu., Ravaev A.A. Materialy, pogloshchayushchie SVCH-izlucheniya. [Materials absorbing microwave radiation]. Moscow, Nauka, 1982. 164 p. (in Russian).
4. Bogoroditsky N.P. Ehlektrotekhnicheskie materialy [Electrotechnical materials]. Leningrad, Energy, 1977. 352 p. (in Russian).
5.
6. Tareev B.M., Korotkov N.V., Petrov V.M. et al. Ehlektroradiomaterialy [Electroradiomaterials]. Moscow, Higher School, 1976. 336 p. (in Russian).
7. Ufimtsev P.Ya. Metod kraevyh voln v fizicheskoj teorii difrakcii [Edge wave method in the physical theory of diffraction]. Moscow, Soviet radio, 1962. 243 p. (in Russian).
8. Rozanov. N. Fundamental restriction for the width of the working range of radio-absorbing coatings. Radiotekhnika i ehlektronika [Radio Engineering and Electronics]. 1999. vol. 44. no. 5. pp. 526–530. (in Russian).
9. Gao J., Li Ch., Shilpakar U., Shen Y. Improvements of mechanical properties in dissimilar joints of HDPE and ABS via carbon nanotubes during friction stir welding process. Materials and Design. 2015. vol. 86. pp. 289–296. doi: 10.1016/j.matdes.2015.07.095
10. Chen J., Hutchings I.M., Deng T., Bradley M.S.A. et al. The effect of carbon nanotube orientation on erosive wear resistance of CNT-epoxy based composites. Carbon. 2014. vol. 73. pp. 421–431. doi: 10.1016/j.carbon.2014.02.083
11. Al-Saleh M.H., Al-Anid H.K., Hussain Y.A. CNT/ABS nanocomposites by solution processing: Proper dispersion and selective localization for low percolation threshold. Composites: Part A. 2013. vol. 46. pp. 53–59. doi: 10.1016/j.compositesa.2012.10.010
12. Bauhofer W., Kovacs J.Z. A Review and Analysis of Electrical Percolation in Carbon Nanotube Polymer Composites. Composites Science and Technology. 2009. vol. 69. pp. 1486–1498. doi: 10.1016/j.compscitech.2008.06.018
13. Bychanok D., Gorokhov G., Meisak D., Plyushch A. et al. Exploring Carbon Nanotubes/BaTiO3 /Fe3O4 Nanocomposites as Microwave Absorbers. Progress In Electromagnetics Research C. 2016. vol. 66. pp. 77–85. doi:10.2528/PIERC16051106
Review
For citations:
Shchegolkov A.V., Shchegolkov A.V., Parafimovich I.D., Burakova E.A., Kobelev A.V., Dyachkova T.P. Aspects of the directional synthesis of carbon nanotubes to create hierarchical radio-absorbing composite materials. Proceedings of the Voronezh State University of Engineering Technologies. 2018;80(4):337-343. (In Russ.) https://doi.org/10.20914/2310-1202-2018-4-337-343