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High-efficiency and wide-bandwidth microwave absorbers based on MoS2-coated carbon fiber

Authors :
Weidong Zhang
Leonarda F. Liotta
Xue Zhang
Hongjing Wu
Qing Zhu
Yuan Zheng
Source :
Journal of colloid and interface science, 586 (2021): 457–468. doi:10.1016/j.jcis.2020.10.109, info:cnr-pdr/source/autori:Zhang W.; Zhang X.; Zhu Q.; Zheng Y.; Liotta L.F.; Wu H./titolo:High-efficiency and wide-bandwidth microwave absorbers based on MoS2-coated carbon fiber/doi:10.1016%2Fj.jcis.2020.10.109/rivista:Journal of colloid and interface science (Print)/anno:2021/pagina_da:457/pagina_a:468/intervallo_pagine:457–468/volume:586
Publication Year :
2021
Publisher :
Elsevier BV, 2021.

Abstract

Carbon fiber (CF) is a significant multifunction material, which is extensively used in aircraft because of its superb performance. However, its microwave absorption properties (MAPs) are seriously restricted as a result of the impedance mismatch issue. To address this issue, an efficient strategy is conducted by a series of CF@MoS and CF@MoS@FeO composites that are fabricated by in-situ grown MoS nanosheets (MoS-NS) and FeO nanoparticles (FeO-NPs) on the surface of CF. The results of microwave absorption performance (MAP) reveal that the minimum reflection loss (RL) can reach -21.4 dB with a CF@MoS composite coating thickness of 3.8 mm; the effective attenuation bandwidth (RL < -10 dB, i.e., 90% microwave energy is attenuated) is up to 10.85 GHz (7.15-18.0 GHz). From a detailed analysis, it is observed impedance mismatch is the critical limiting factor for MAPs rather than attenuation. Furthermore, for CF@MoS@FeO, the MAP is strongly dependent on the level of coating of magnetic FeO-NPs on the surface of CF@MoS composites. The mechanisms underlying the superb MAP and related phenomena are investigated, opening new directions for fabricating CF-based microwave absorbers with high efficiency and wide-bandwidth. Finally, the occurrence of multi-reflection phenomena of EM waves in absorbers are critically analyzed.

Details

ISSN :
00219797
Volume :
586
Database :
OpenAIRE
Journal :
Journal of Colloid and Interface Science
Accession number :
edsair.doi.dedup.....4438fc32f146a4595960ee720bd9ee8f