Abstract
SiC nanofiber aerogels are considered promising for electromagnetic wave (EMW) absorption owing to their high-temperature stability and tunable electromagnetic parameters. However, their inherently low electrical conductivity and single loss mechanism significantly restrict their absorption performance. Herein, Fe3Si/SiC composite nanofibers were synthesized via electrospinning followed by high-temperature pyrolysis. Subsequently, a hierarchically porous SiC/Fe3Si@rGO composite aerogel with multicomponent synergy is then constructed by combining ice templating with graphene oxide incorporation. The resulting aerogel achieved a minimum reflection loss (RLmin) of −46.68 dB at 8.84 GHz with a thickness of 3.0 mm. Moreover, within a thickness range of 1.5–5.0 mm, the material maintains RL < −10 dB across the entire 4–18 GHz frequency range. Mechanism analysis reveals that the introduced Fe3Si phase contributes magnetic loss, while the graphene sheets form a three-dimensional conductive network, enhancing both conductive loss and interfacial polarization. Additionally, the incorporation of graphene refines and enriches the pore structure, which optimizes impedance matching and promotes multiple scattering of EMWs. This work provides a viable strategy for the design of lightweight and high-performance EMW-absorbing materials.
| Original language | English |
|---|---|
| Article number | 121765 |
| Journal | Carbon |
| Volume | 257 |
| DOIs | |
| Publication status | Published - Jul 2026 |
| Externally published | Yes |
Keywords
- Aerogel
- Electromagnetic wave absorption
- Graphene
- SiC nanofiber
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