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June 15, 2026Rare Metals0 citationsOpen Access

In Situ Embedded FeSiB Nanocrystals in Amorphous Matrix With MOF‐Derived Porous Carbon for Enhanced Electromagnetic Wave Absorption

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LWLei WangWDWeiwei DongSTSihao Tu

Key Points

  • The research aims to regulate magnetic loss and improve dielectric properties for enhanced electromagnetic wave absorption.
  • Investigation of in situ growth of dispersed FeSiB nanocrystals in an amorphous matrix.
  • Utilization of MOFs-derived porous carbon to optimize dielectric loss.
  • Measurement of reflection loss and effective absorption bandwidth at specific frequencies and coating thicknesses.
  • At 10 wt% and 20 wt% MIL-101(Fe), reflection loss reached −55.34 and −59.11 dB at frequencies of 17.24 and 16.05 GHz, respectively.
  • Effective absorption bandwidths of 6.78 and 3.58 GHz observed at coating thicknesses of 2.4 and 2.0 mm.
  • Demonstrated significant enhancement in electromagnetic wave absorption performance of composite materials.

Abstract

ABSTRACT Because magnetic permeability is an intrinsic property of materials, achieving the regulation of magnetic loss is one of the challenges for electromagnetic wave absorption materials. This paper focuses on the research idea of in situ growth of dispersed nanocrystalline FeSiB in an amorphous FeSiB matrix to regulate magnetic properties. On the other hand, based on impedance matching, composite MOFs‐derived porous carbon is used to optimize dielectric loss characteristics. The dual regulation of magnetism and dielectric properties aims to improve the electromagnetic wave absorption performance of composite materials. The research results show that, when the MIL‐101(Fe) composite is 10 wt% and 20 wt%, the reflection loss (RL) reaches −55.34 and −59.11 dB, corresponding to coating thicknesses ( d ) of 1.54 and 1.45 mm and frequencies ( f ) of 17.24 and 16.05 GHz, respectively. The effective absorption bandwidths (EAB, RL ≤ −10 dB) are 6.78 and 3.58 GHz at d = 2.4 and 2.0 mm, respectively. This study provides a useful reference idea for constructing FeSiB soft magnetic composite electromagnetic wave absorption materials.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6a2f973ca1cfeec49082845ehttps://doi.org/10.1002/rar2.70383
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