Issue 40, 2024

Engineering flaky carbonyl iron/MoS2 composites with tuned and broadband absorption towards low-frequency electromagnetic waves

Abstract

The contemporary frequency spectrum utilized by wireless devices predominantly resides in the L–C bands, thus addressing electromagnetic wave (EMW) pollution within these ranges has emerged as a critical research challenge. In this study, flaky carbonyl iron powder/molybdenum disulfide (FCIP/MoS2) composites were synthesized through a combination of hydrothermal and ball milling techniques. The introduction of MoS2 not only optimizes the impedance matching of the samples to a great extent, but also allows the composite to adjust its EMW absorption from the X-band to the L-band with only a slight adjustment of the MoS2 content. Particularly, the optimized FCIP/MoS2 composites demonstrated an impressive minimum reflection loss (RLmin) of −54.86 dB at a thickness of 3.09 mm with the absorption bandwidth spanning 55.5% of the S-band. Furthermore, the underlying mechanism of the enhanced and modulated wave absorption performance was elucidated. Theoretical simulations revealed that the maximum radar scattering cross-section (RCS) value of the composite can be reduced by approximately 29 dB m2, revealing exceptional wave absorption performance. This investigation presents a novel approach to the preparation of highly efficient tunable EMW absorbers which may find great potential in 5G technology, new energy vehicles as well as military applications.

Graphical abstract: Engineering flaky carbonyl iron/MoS2 composites with tuned and broadband absorption towards low-frequency electromagnetic waves

Article information

Article type
Paper
Submitted
06 Aug 2024
Accepted
04 Sep 2024
First published
05 Sep 2024

J. Mater. Chem. C, 2024,12, 16560-16573

Engineering flaky carbonyl iron/MoS2 composites with tuned and broadband absorption towards low-frequency electromagnetic waves

Z. Yao, Y. Liu, Y. Zhang, X. Zhang, Y. Wu, J. Cui, J. Wang, Y. Wang, J. Liu and Y. Wu, J. Mater. Chem. C, 2024, 12, 16560 DOI: 10.1039/D4TC03367A

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