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September 10, 2025Materials Horizons45 citations

Bionic Fire-resistant Chitosan Aerogels with Triple Stealth: Microwave, Infrared and Sound

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XSXiuhong SunJHJinhu HuCJCao Jin

Key Points

  • CS-2 exhibits a minimum reflection loss of -72.13 dB, showcasing excellent microwave-absorbing properties.
  • A lightweight carbon/BPNS@MOF aerogel shows thermal conductivity as low as 0.05 W (m K)-1 for fire resilience.
  • The stealth potential is demonstrated through radar cross-section simulations indicating superior performance.
  • CS-2 achieves a sound absorption coefficient above 0.95 with just a 5.0 mm thickness, indicating effective sound dampening.

Abstract

The complex electromagnetic environment in national defense requires tailored microwave-absorbing materials for different scenarios. In aerospace, lightweight and multifunctional materials are especially important. While aerogels offer low density, they must be further modified to become effective microwave absorbers. Traditional fillers like carbon nanotubes often cause problems such as impedance mismatch, particle aggregation, and poor chemical reactivity, limiting their performance in aerogel systems. To overcome these issues, we used an electrostatic self-assembly strategy to deposit a FeCo-based metal-organic framework (MOF) onto black phosphorus nanosheets (BPNSs). The resulting BPNS@MOF was then integrated into a chitosan-derived aerogel through Schiff base reactions between the amino groups of the MOF and the aldehyde groups of glutaraldehyde. After freeze-drying and high-temperature pyrolysis, we obtained a lightweight, multifunctional carbon/BPNS@MOF aerogel (CS-2). CS-2 exhibits excellent electromagnetic properties, with a minimum reflection loss of -72.13 dB and an effective absorption bandwidth of 5.88 GHz. Radar cross-section simulations confirm its stealth potential. In addition, CS-2 shows ultralow thermal conductivity (0.05 W (m K)-1), superior fire resistance, and outstanding sound absorption performance (a 5.0 mm-thick sample achieves a sound absorption coefficient of above 0.95). These features demonstrate its strong potential for multifunctional aerospace and defense applications.

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Cite This Study

Sun et al. (2025) studied this question.

synapsesocial.com/papers/68c1c9d254b1d3bfb60f2c48https://doi.org/10.1039/d5mh01066g
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