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March 13, 2026ACS Applied Nano Materials2 citations

Magnetic Nanoparticle-Doped Ordered Mesoporous Carbon Fibers from Scalable Wet Spinning for Broadband Microwave Absorption

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YLYali LiYZYihui ZhouYWYue Wang

Key Points

  • The aim is to develop scalable ordered mesoporous carbon fibers doped with magnetic nanoparticles for improved microwave absorption.
  • Utilized wet spinning to fabricate macroscale ordered mesoporous carbon fibers.
  • Incorporated Fe7S8 nanoparticles through sulfonation and cross-linking of SEBS.
  • Conducted carbonization to preserve ordered mesoporosity while forming nanoparticles.
  • Achieved a specific surface area of 387 m2/g with well-defined mesoporosity.
  • Demonstrated a minimum reflection loss of -35.7 dB.
  • Exhibited a broadband effective absorption bandwidth of 6.3 GHz at 1.6 mm thickness.

Abstract

Integrating ordered mesoporous architectures and functional nanoparticles into carbon fibers holds great promise for various advanced applications. However, current methods are primarily based on electrospun mesoporous carbon nanofibers, which suffer from high cost, low throughput, and poor scalability. The fabrication of macroscale ordered mesoporous carbon fibers (OMCFs) doped with functional nanoparticles using cost-effective and industrially viable methods, such as wet spinning, remains a significant challenge. Herein, we report a scalable wet-spinning strategy to fabricate macroscale Fe7S8 nanoparticle-doped ordered mesoporous carbon fibers (Fe7S8@OMCFs) using the commodity thermoplastic elastomer of polystyrene-block-poly(ethylene-ran-butylene)-block-polystyrene triblock copolymer (SEBS) as a versatile carbon precursor. Sulfonation and cross-linking of SEBS enable uniform Fe3+ incorporation and subsequent formation of Fe7S8 nanoparticles during carbonization while preserving the ordered mesoporous architecture throughout the entire fiber. The resulting Fe7S8@OMCFs exhibit a high specific surface area (387 m2/g), well-defined mesoporosity, and homogeneously dispersed magnetic nanoparticles, resulting in exceptional microwave absorption performance due to superior impedance matching and enhanced electromagnetic loss. These fibers achieve a minimum reflection loss of −35.7 dB and a broadband effective absorption bandwidth of 6.3 GHz at a low thickness of 1.6 mm. CST simulations further demonstrate significant radar cross-sectional reduction across multiple incident angles. This work overcomes longstanding fabrication limitations and offers a scalable, generalizable route to macroscale OMCFs for multifunctional applications.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69b3ad6c02a1e69014ccf721https://doi.org/10.1021/acsanm.5c05797
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