Abstract
Driven by the rapid development of microelectronics and aerospace engineering, lightweight, ultrathin, broadband microwave absorption (MA) materials are urgently required for advanced electromagnetic protection and stealth technologies. Conventional ceramic-derived MA absorbers face inherent bottlenecks of incompatible impedance matching and insufficient attenuation efficiency, severely restricting their application in miniaturized aerospace and electronic systems. A novel bubble coral-like Fe-MOF modified carbonaceous nanofiber composite (BF@CNFs) is fabricated via electrospinning, thermal curing, and high-temperature carbonization, with its microstructure precisely tailored by optimizing polyacrylonitrile/phenolic resin ratio and carbonization heating rate. The optimized BF@CNF-2 delivers a minimum reflection loss of −36.2 dB at 1.3 mm thickness, with an effective absorption bandwidth nearly covering the entire Ku-band (12.0–18.0 GHz). This outstanding performance stems from the synergistic effect of conductive carbon nanofiber scaffolds and Fe-MOF-derived magnetic phases. The work provides a scalable, ceramic-compatible strategy for high-performance MA materials, addressing long-standing technical challenges, with promising prospects in aerospace stealth and electromagnetic shielding.
| Original language | English |
|---|---|
| Article number | e70206 |
| Journal | International Journal of Applied Ceramic Technology |
| Volume | 23 |
| Issue number | 3 |
| DOIs | |
| State | Published - Jun 2026 |
Keywords
- bubble coral-like Fe-metal-organic framework
- carbonaceous nanofibers
- electrospinning
- microwave absorption
- synergistic optimization
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