Issue 9, 2022, Issue in Progress

Construction of one-dimensional MoO2/NC heteronanowires for microwave absorption

Abstract

A combination of a special micro–nanostructure and multiple components has been proven as an effective strategy to strengthen the microwave attenuation capacity. In this work, one-dimensional MoO2/N-doped carbon (NC) nanowires with a heterostructure have been successfully prepared by utilizing mild in situ chemical oxidative polymerization and pyrolysis treatment. After compounding them with a thermoplastic polyurethane (TPU) matrix, the flexible composites exhibit tunable wave absorbing performance by modulating the filler loading of MoO2/NC heteronanowires. Experimental results demonstrate that the minimum reflection loss value of the MoO2/NC–TPU hybrid is up to −35.0 dB at 8.37 GHz under a thickness of only 2.3 mm with 40 wt% filler amounts. Moreover, the effective absorption bandwidth enables 3.26 GHz to be achieved (8.49–11.75 GHz) when the thickness changes to 2.0 mm, covering almost the whole X-band. Meanwhile, when the filler loading becomes 30 wt%, dual-absorption peaks appear. The relevant absorption mechanism is mainly attributed to the dielectric loss including strong dipolar/interfacial polarizations, Debye relaxation loss and multiple reflection and scattering.

Graphical abstract: Construction of one-dimensional MoO2/NC heteronanowires for microwave absorption

Supplementary files

Article information

Article type
Paper
Submitted
15 Dec 2021
Accepted
19 Jan 2022
First published
11 Feb 2022
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2022,12, 5157-5163

Construction of one-dimensional MoO2/NC heteronanowires for microwave absorption

X. Zhang, M. Gong, Y. Dai and B. Wen, RSC Adv., 2022, 12, 5157 DOI: 10.1039/D1RA09074G

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