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. 2025 Jul 21;15(32):25872-25884.
doi: 10.1039/d5ra03579a.

Facile synthesis of CoFe2O4@SiO2 nanoparticles anchored on reduced graphene oxide for highly efficient electromagnetic wave absorption

Affiliations

Facile synthesis of CoFe2O4@SiO2 nanoparticles anchored on reduced graphene oxide for highly efficient electromagnetic wave absorption

Hechao Lu et al. RSC Adv. .

Abstract

In this study, a ternary composite material composed of CoFe2O4@SiO2 nanospheres and reduced graphene oxide (RGO) was successfully synthesized through a facile route. The composites exhibited a layered "sandwich" structure, where CoFe2O4@SiO2 nanospheres were anchored onto the surface of RGO nanosheets. The microstructure and electromagnetic wave absorption properties of the synthesized CoFe2O4@SiO2/RGO were systematically investigated. Results revealed that the composites possessed excellent electromagnetic wave absorption performance, with a minimum reflection loss (RL) of -27.7 dB at 13.02 GHz for a thickness of 1.8 mm. Furthermore, the composites exhibited a broad absorption bandwidth of up to 14.52 GHz (3.48-18 GHz) with reflection losses less than -10 dB over a thickness range of 1.5 to 5.0 mm, covering the S-Ku band. The enhanced absorption performance could be attributed to the optimized impedance matching and synergistic electromagnetic loss mechanisms. The CoFe2O4@SiO2/RGO composites demonstrated balanced dielectric and magnetic loss, enabled by the effective interaction of electromagnetic parameters. These results indicate that the developed composites provide a promising candidate for high-performance microwave absorbing materials with lightweight, strong absorption, and broad bandwidth characteristics, potentially applicable in military stealth technology, electromagnetic compatibility enhancement, and ecological protection.

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Conflict of interest statement

There are no conflicts of interest to declare.

Figures

Fig. 1
Fig. 1. Schematic illustration of the preparation of CoFe2O4@SiO2/RGO.
Fig. 2
Fig. 2. TEM images of (a) CoFe2O4, (b) CoFe2O4/RGO, (c) CoFe2O4@SiO2 and (d) CoFe2O4@SiO2/RGO composites.
Fig. 3
Fig. 3. SEM images of (a) CoFe2O4, (b) CoFe2O4/RGO, (c) CoFe2O4@SiO2 and (d) CoFe2O4@SiO2/RGO composites and (e–h) the corresponding EDS spectra.
Fig. 4
Fig. 4. (a) XRD spectra of RGO, CoFe2O4, CoFe2O4/RGO, CoFe2O4@SiO2 and CoFe2O4@SiO2/RGO nanocomposites and (b) Raman spectra of GO, RGO, CoFe2O4/RGO and CoFe2O4@SiO2/RGO nanocomposites.
Fig. 5
Fig. 5. VSM measurement results of CoFe2O4, CoFe2O4/RGO, CoFe2O4@SiO2, CoFe2O4@SiO2/RGO nanocomposites.
Fig. 6
Fig. 6. Frequency dependence of (a) the real part of complex permittivity ε′, (b) the imaginary part of complex permittivity ε′′, (c) the real part of complex permeability μ′, (d) the imaginary part of complex permeability μ′′, (e) dielectric loss tan δε and (f) magnetic loss tan δμ of CoFe2O4, CoFe2O4/RGO, CoFe2O4@SiO2 and CoFe2O4@SiO2/RGO nanocomposites.
Fig. 7
Fig. 7. (a) Typical Cole–Cole semicircles, (b) C0 (representing eddy current loss) versus frequency of CoFe2O4, CoFe2O4/RGO, CoFe2O4@SiO2 and CoFe2O4@SiO2/RGO nanocomposites, and (c) attenuation constant of CoFe2O4, CoFe2O4/RGO, CoFe2O4@SiO2 and CoFe2O4@SiO2/RGO nanocomposites.
Fig. 8
Fig. 8. Reflection loss curves of (a) CoFe2O4, (b) CoFe2O4/RGO, (c) CoFe2O4@SiO2 and (d) CoFe2O4@SiO2/RGO composites with a thickness in the range of 1.5–5.0 mm, and (e–h) the corresponding three dimensional presentation.
Fig. 9
Fig. 9. (a) Frequency dependence of the RL with different thicknesses, (b) the simulations of the absorber thickness (tm) versus peak frequency (fm) under quarter-wave thickness criterion, and (c) the relationship between the impedance matching characteristics (Z = |Zin/Z0|) and the EMW frequency of CoFe2O4@SiO2/RGO composite.
Fig. 10
Fig. 10. Schematic of the EMWs absorbing mechanisms in CoFe2O4@SiO2/RGO composites.

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