4.8 Article

Boosted electromagnetic wave absorption performance from synergistic induced polarization of SiCNWS@MnO2@PPy heterostructures

Journal

NANO RESEARCH
Volume 16, Issue 2, Pages 3558-3569

Publisher

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-022-5289-z

Keywords

SiC nanowires; heterostructure; po ar zation loss; electromagnetic wave absorption; attenuation mechanism

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In the past decade, there has been increasing attention on electromagnetic pollution. Developing low-cost, lightweight, simple preparation, and high electromagnetic attenuation efficient absorbing materials has become a feasible solution to this problem. In this study, core-shell SiCNws@MnO2@PPy nanocomposites were successfully prepared and exhibited excellent electromagnetic wave absorption performance, making them a promising material for absorbing electromagnetic waves.
In the last decade, electromagnetic pollution has caused people's considerable attention. Developing absorbing material with low cost, lightweight, simple preparation, and high electromagnetic attenuation efficiency has become a feasible means to deal with this problem. In this work, core-shell SiCNws@MnO2@PPy (NWs: nanowires, PPy: polypyrrole) heterostructures composed of SiC nanowires core, Mn02 nanosheets inter-layer, and PPy coating were successfully prepared through chemical vapor deposition and two-step electrodeposition process. Taking advantage of the interfacial polarization and dipole polarization, the obtained product displays excellent electromagnetic wave absorption performances with the minimum reflection loss (RLmin) of -50.59 dB when the matching thickness is 2.41 mm, and the optimal effective absorption bandwidth (EAB) value reaches to 6.64 GHz at a matching thickness of 2.46 mm, revealing that the SiCNWs@MnO2@PPy nanocomposite could be served as a promising electromagnetic wave absorbing material. On the basis of systematic analysis concerning the electromagnetic parameters, the dissipation process of the incident electromagnetic wave was demonstrated reasonably, which may provide a referable preparation strategy for novel heterostructures, especially nonmagnetic lightweight absorbing material.

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