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Fe-MOF Modified Bubble Coral-Like Carbon Nanofibers for Ultrathin Broadband Microwave Absorption

  • Weiwei Pei
  • , Hongli Liu*
  • , Guanqi Xu
  • , Junjie Zhang
  • , Boshi Gao*
  • , Wenshuo Cao
  • , Mingwei Li
  • , Xianlin Xiao
  • , Mingda Liu
  • , Yuhao Liu
  • , Xiaoxiao Huang*
  • *Corresponding author for this work
  • Jiamusi University
  • Civil Aviation University of China
  • Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

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 languageEnglish
Article numbere70206
JournalInternational Journal of Applied Ceramic Technology
Volume23
Issue number3
DOIs
StatePublished - Jun 2026

Keywords

  • bubble coral-like Fe-metal-organic framework
  • carbonaceous nanofibers
  • electrospinning
  • microwave absorption
  • synergistic optimization

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