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Please use this identifier to cite or link to this item: https://elib.bsu.by/handle/123456789/253588
Title: Electromagnetic and optical responses of a composite material comprising individual single-walled carbon-nanotubes with a polymer coating
Authors: Shuba, M. V.
Yuko, D.
Kuzhir, P. P.
Maksimenko, S. A.
Ksenevich, V. K.
Lim, S.-H.
Kim, T.-H.
Choi, S.-M.
Keywords: ЭБ БГУ::ЕСТЕСТВЕННЫЕ И ТОЧНЫЕ НАУКИ::Физика
Issue Date: 2020
Publisher: Nature Research
Citation: Scientific Reports. – 2020. – Vol. 10. – P. 9361 (9 pp.)
Abstract: The composites and thin films comprising individual single-walled carbon nanotubes with a polymer coating (p-CNTs) have been prepared and their electromagnetic responses have been studied in a wide range from low-frequency (25–107 Hz) up to the infrared region. In spite of the high volume fraction of the nanotubes (up to 3.3%), the polymer coating prevents direct p-CNT contacts and the formation of the percolation network in those composites, so that p-CNTs interact only via the electromagnetic coupling. Thereby it is an ideal model system to verify experimentally the fundamental issues related to carbon nanotube electromagnetics, such as the influence of inter-tube electron tunneling on the localized plasmon resonance in the terahertz range, or the infrared absorption enhancement of polymer molecules attached to the nanotube surface. Along with addressing the fundamentals, applied carbon nanotube electromagnetics got insights important for the applications of p-CNT based composites as dielectric media in the terahertz regime. In particular, we found that the real part of the permittivity of the p-CNT film in the terahertz range is rather competitive, i.e. 8–13, however the loss tangent is not so small (0.4–0.6) as has been predicted. The way to increase p-CNT terahertz performance is also discussed.
URI: https://elib.bsu.by/handle/123456789/253588
ISSN: 2045-2322
DOI: 10.1038/s41598-020-66247-8
Sponsorship: This research was partially supported by the Belarusian Republican Foundation for Fundamental Research (BRFFR) project F18Kor-002, and the National Research Foundation of Korea (NRF) grant Nos. 2017K2A9A1A06044424 funded by the Korea government (MEST). The work has also benefited of funding from the EU H2020 program under the Horizon 2020 RISE DiSeTCom Project 823728, and project 823878 TERASSE. VK is thankful for support by National Research Program “Nanotex” (project N 2.31) and by BRFFR (project F18PAKG-001). M.V.S. and S.A.M. are thankful for support by Tomsk State University Competitiveness Improvement Program. This work was partly supported by the Academy of Finland Flagship Programme, Photonics Research and Innovation (PREIN), decision 320166. PK is supported by Horizon 2020 IF TURANDOT project 836816.
Appears in Collections:Кафедра физики полупроводников и наноэлектроники (статьи)

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