Thermoplastic polyurethane/carbon black composites for microwave and terahertz electromagnetic compatibility | Izvestiya vuzov. Fizika. 2025. № 12. DOI: 10.17223/00213411/68/12/3

Thermoplastic polyurethane/carbon black composites for microwave and terahertz electromagnetic compatibility

The results of a study of the electrophysical properties of a composite material containing carbon black in a thermoplastic polyurethane polymer matrix are presented. Optical microscopy results are also presented. Electromagnetic response measurements were performed using a coaxial waveguide cell in the frequency range of 0.1-18 GHz and a quasi-optical spectrometer in the frequency range of 115-258 GHz. It is shown that the addition of equal amounts of carbon black to thermoplastic polyurethane leads to a nearly linear increase in the complex permittivity.

Download file
Counter downloads: 1

Keywords

electrophysical properties, polymer composites, additive technology, transmission coefficient, carbon black

Authors

NameOrganizationE-mail
Badin Alexander V.Tomsk State Universitythzlab@mail.ru
Kuleshov Grigoriy E.Tomsk State Universitykge@mail.tsu.ru
Zhuravlev Victor A.Tomsk State Universityptica@mail.tsu.ru
Dorozhkin Kirill V.Tomsk State Universityyasbtk@yandex.ru
Tomilov Ivan M.Tomsk State Universitynikobellik2004@gmail.com
Katelina Daria S.Tomsk State Universitydaryakatelina@gmail.com
Moskalenko Victoriya D.Tomsk State Universityirreproacheable17@bk.ru
Всего: 7

References

Isari A.A., Ghaffarkhah A., Hashemi S.A., et al.// Adv. Mater. - 2024. - V. 36. - P. e2310683.
Devi N., Ray S.S. // Polymer Eng. Sci. - 2022. - V. 62. - No. 3. - P. 591-621.
Zhou S., Zhang G., Nie Z., et al. // Mater. Chem. Frontiers. - 2022. - V. 6. - No. 13. - P. 1736-1751.
Бадьин А.В., Кулешов Г.Е., Вагнер Д.В. и др. // Изв. вузов. Физика. - 2023. - Т. 66. - № 2. - С. 3-13.
Sohi N., Rahaman M., Khastgir D. // Polym.Compos. - 2011. - V. 32. - No. 7. - P. 1148-1154.
Retailleau C., Eddine J.A., Ndagijimana F., et al. // Compos. Sci. Technol. - 2022. - V. 221 - P. 109351.
Zhan Z., Song Q., Zhou Z., et al. // J. Mater. Chem. - 2019. - V. 7. - No. 32. - P. 9820-9829.
Hwang S., Reyes E.I., Moon K., et al. // J. Electron. Mater. - 2014. - V. 44. - No. 3. - P. 771-777.
Kuleshov G.E., Badin A.V. // IOP Conf. Ser.: Mater. Sci. Eng. - 2019. - V. 525. - No. 1. - P. 012030.
Blyweert P., Nicolas V., Fierro V., et al. // Carbon. - 2021. - V. 183. - P. 449-485.
Gao Q., Ye X., He E., et al. // Polym.Compos. - 2024. - V. 45. - No. 15. - P. 13829-13843.
Abdalla A., Hamzah H.H., Keattch O., et al. // Electrochim. Acta. - 2020. - V. 354. - P. 136618.
Yuan M., Zhou M., Fu H. // Compos. Part B: Engineering. - 2021. - V. 224. - P. 109178.
Peng F., Dai M., Guo Y., et al. // J. Mater. Sci. Technol. - 2022. - V. 106. - P. 147-161.
Chalapat K., Sarvala K., Li J., et al. // IEEE Trans. Microw. Theory Tech. - 2009. - V. 57. - No. 9. - P. 2257-2267.
Nicolson А.М., Ross G.F. // IEEE Trans. lustrum. Meas. - 1970. - V. 19. - No. 4. - P. 377-382.
Weir W.B. // Proc. IEEE. - 1974. - V. 62. - P. 33-36.
Baker-Jarvis J., Vanzura E.J., Kissick W.A., et al. // IEEE Trans. Microw. Theory Tech. - 1990. - V. 38. - P. 1096-1103.
Aal N.A., El-Tantawy F., Al-Hajry A., et al. // Polym.Compos. - 2007. - V. 29. - P. 125-132.
Хиппель А.Р. Диэлектрики и волны. - М.: ИЛ, 1960. - 440 с.
Lei L., Yao Z., Zhou J., et al. // Compos. Sci. Technol. - 2020. - V. 200. - P. 108479.
Zhang Z., Wang F., Zhang J., et al. // Adv. Eng. Mater. - 2023. - V. 25. - P. 202201236.
Zhuravlev V., Suslyaev V., Korovin E., et al. // Mater. Sci. Appl. - 2014. - V. 5. - No. 11. - P. 803-811.
 Thermoplastic polyurethane/carbon black composites for microwave and terahertz electromagnetic compatibility | Izvestiya vuzov. Fizika. 2025. № 12. DOI: 10.17223/00213411/68/12/3

Thermoplastic polyurethane/carbon black composites for microwave and terahertz electromagnetic compatibility | Izvestiya vuzov. Fizika. 2025. № 12. DOI: 10.17223/00213411/68/12/3

Download full-text version
Counter downloads: 100