From waste to wealth: recycled PBO nanofiber/CNT/CoFe2O4/MXene aerogels with multiscale architecture for radar stealth and thermal insulation

The application of recycled high-performance fibers is expanding across various fields, driven by their potential for high value utilization and the sustainable management of waste resources. The improper disposal of substantial poly (p-phenylene benzobisoxazole) (PBO) waste generated from manufacturing or end-of-life product squanders valuable resources and may pose potential environmental concerns. In line with cost-reduction and resource-saving objectives, we present a feasible paradigm centered on the top-down transformation of PBO waste pulp into a high-value, multifunctional PNF/CNT/CoFe 2 O 4 /MXene aerogel (PCMA) with favorable radar stealth and thermal insulation capacities. Driven by a multiscale porous architecture engineered through the integration of CNT/CoFe₂O₄ and MXene, the PCMA achieved well-balanced dissipation capacity and matching impedance with an optimal figure of merit (FOM) of 41.83 dB·GHz·mm −1 . Furthermore, its slender skeleton and abundant pores effectively suppress heat transfer, achieving a thermal conductivity of 0.065 W·m −1 ·K −1 and maintaining a temperature difference of 73.2 °C on a 150 °C hot plate for 30 min. Moreover, PCMA-100 demonstrates desirable thermal stability with a decomposition peak temperature of 737.4 °C. At a treatment temperature of 400 °C in air, the sample achieves an effective absorption bandwidth of 5.56 GHz at 2.1 mm. Therefore, this work provides a feasible strategy for valorizing waste PBO fibers into multifunctional stealth composites that are applicable to harsh environments.

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Publication Details

Journal
Applied Materials Today
Published
2026-09-29
DOI
https://doi.org/10.1016/j.apmt.2026.103435
Primary Topic
Electromagnetic wave absorption materials
Type
article
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article

From waste to wealth: recycled PBO nanofiber/CNT/CoFe2O4/MXene aerogels with multiscale architecture for radar stealth and thermal insulation

Siyi Bi, Minghao Li, Wenqing Hai, Guangwei Shao et al.
Applied Materials Today
Electromagnetic wave absorption materials
article

From waste to wealth: recycled PBO nanofiber/CNT/CoFe2O4/MXene aerogels with multiscale architecture for radar stealth and thermal insulation

Siyi Bi, Minghao Li, Wenqing Hai, Guangwei Shao, Jinhua Jiang, Wei Li, Huiqi Shao, Nanliang Chen, Qi Liu
article en

Abstract

The application of recycled high-performance fibers is expanding across various fields, driven by their potential for high value utilization and the sustainable management of waste resources. The improper disposal of substantial poly (p-phenylene benzobisoxazole) (PBO) waste generated from manufacturing or end-of-life product squanders valuable resources and may pose potential environmental concerns. In line with cost-reduction and resource-saving objectives, we present a feasible paradigm centered on the top-down transformation of PBO waste pulp into a high-value, multifunctional PNF/CNT/CoFe 2 O 4 /MXene aerogel (PCMA) with favorable radar stealth and thermal insulation capacities. Driven by a multiscale porous architecture engineered through the integration of CNT/CoFe₂O₄ and MXene, the PCMA achieved well-balanced dissipation capacity and matching impedance with an optimal figure of merit (FOM) of 41.83 dB·GHz·mm −1 . Furthermore, its slender skeleton and abundant pores effectively suppress heat transfer, achieving a thermal conductivity of 0.065 W·m −1 ·K −1 and maintaining a temperature difference of 73.2 °C on a 150 °C hot plate for 30 min. Moreover, PCMA-100 demonstrates desirable thermal stability with a decomposition peak temperature of 737.4 °C. At a treatment temperature of 400 °C in air, the sample achieves an effective absorption bandwidth of 5.56 GHz at 2.1 mm. Therefore, this work provides a feasible strategy for valorizing waste PBO fibers into multifunctional stealth composites that are applicable to harsh environments.

Applied Materials TodayVol. 53
Donghua University (CN)
Responsible consumption and production
Openalex Percentile: Top 30%
Electromagnetic wave absorption materials
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