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Updated: May 18, 2026

Preparation and Evaluation of Hybrid Composites of Chemical Fuel and Multi-walled Carbon Nanotubes in the Study of Thermopower Waves
Published on: April 10, 2015
Broadband microwave-absorbing GO-CNT nanocomposites enabled by synergistic FeCoNi ternary catalysis
Yunxuan Fang1, Chengwei Dong2, Wenyan Wang1
1Key Laboratory of Materials and Surface Technology (Ministry of Education), School of Materials Science and Engineering, Engineering Research Center of Intelligent Air-Ground Integration Vehicle and Control, Xihua University, Chengdu 610039, China. ruihan_harry@163.com.
Abstract:
The realization of strong attenuation and broadband microwave absorption in carbon-based materials through controllable structural design remains highly challenging. In this work, a three-dimensional graphene oxide-carbon nanotube (GO-CNT) network is constructed by in situ growth of carbon nanotubes on graphene oxide substrates via chemical vapor deposition, using melamine as the carbon source and a ternary Fe-Co-Ni synergistic catalyst. Subsequent oxidation yielded a composite material featuring spinel oxide shell structures. The N-doped graphitized framework and uniformly dispersed alloy nanoparticles cooperatively form continuous conductive pathways and abundant heterogeneous interfaces, facilitating efficient dissipation of electromagnetic energy. After oxidation, the introduction of spinel-type oxide shells and additional surface defects finely regulates the balance between dielectric and magnetic responses. As a result, GO-CNTs exhibit a minimum reflection loss (RLmin) of -49.4 dB and an effective absorption bandwidth (EAB) of 4.33 GHz at a thickness of 2.2 mm, whereas the oxidized GO-CNT-O sample achieves an EAB of 5.33 GHz at a reduced thickness of 1.8 mm while maintaining an RLmin better than -35 dB. This complementary behavior demonstrates that oxidation-mediated regulation of ε-μ coupling with a single three-dimensional carbon network enables switching between deep-attenuation and broadband-absorption modes under thin-layer conditions. This study provides a practical and scalable route to tunable microwave-absorbing materials and lays a foundation for the integrated application of multidimensional carbon networks in advanced electromagnetic protection systems.
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