Microwave-Absorption Properties of Three Kinds of Structured Cu/C Composites
Linwen Jiang, Zhenhua Wang, Da Li, Dianyu Geng, Yu Wang, Jing An, Jun He, Wei Liu, Zhidong Zhang
Abstract
Linwen Jiang, Zhenhua Wang, Da Li, Dianyu Geng, Yu Wang, Jing An, Jun He, Wei Liu, Zhidong Zhang
Abstract
The microwave-absorption properties of three kinds of (core-shell, uniform-mixing and double-layer structured) Cu/C composites are investigated in the 2-18 GHz frequency range. The results show that the Cu/C composites with core-shell structure are favorable to obtain higher relative permittivity and better microwave-absorption properties in comparison with other Cu/C composites. The reflection loss (RL) values exceeding -10 dB are obtained in 13.0-17.2 GHz at the absorber thickness of 1.6 mm for the core-shell structured Cu/C nanoparticles, which cover most of Ku-band (12-18 GHz). The excellent microwave-absorption properties may result from synergetic effects induced by the tightly-connected core-shell interfaces. The synergetic effects are explained by a simulated physical model, wherein both the interfacial polarizations and interfacial multiple reflections are responsible to the excellent microwave-absorption performances.
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The microwave-absorption properties of three kinds of (core-shell, uniform-mixing and double-layer structured) Cu/C composites are investigated in the 2-18 GHz frequency range. The results show that the Cu/C composites with core-shell structure are favorable to obtain higher relative permittivity and better microwave-absorption properties in comparison with other Cu/C composites. The reflection loss (RL) values exceeding -10 dB are obtained in 13.0-17.2 GHz at the absorber thickness of 1.6 mm for the core-shell structured Cu/C nanoparticles, which cover most of Ku-band (12-18 GHz). The excellent microwave-absorption properties may result from synergetic effects induced by the tightly-connected core-shell interfaces. The synergetic effects are explained by a simulated physical model, wherein both the interfacial polarizations and interfacial multiple reflections are responsible to the excellent microwave-absorption performances.
Key concepts: Materials science, Microwave, Composite material, Reflection loss, Absorption (acoustics), Core (optical fiber), Shell (structure), Permittivity