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Article

A Hierarchically Structured Composite Integrating a Biomass-Derived Magnetic Carbon Framework with Various Magnetic Phases, Exhibiting Outstanding Electromagnetic Wave Absorption Performance

1
Zhejiang Key Laboratory of Soil Remediation and Quality Improvement, School of Environment and Resources, Zhejiang Agriculture and Forestry University, Hangzhou 311300, China
2
Bamboo Home Engineering Technology Research Center of National Forestry and Grassland Administration, China National Bamboo Research Center, Hangzhou 310012, China
3
Sino-Spain Joint Laboratory for Agricultural Environment Emerging Contaminants of Zhejiang Province, School of Environment and Resources, Zhejiang Agriculture and Forestry University, Hangzhou 311300, China
*
Authors to whom correspondence should be addressed.
Molecules 2026, 31(10), 1775; https://doi.org/10.3390/molecules31101775
Submission received: 29 April 2026 / Revised: 19 May 2026 / Accepted: 20 May 2026 / Published: 21 May 2026
(This article belongs to the Special Issue Emerging Multifunctional Materials for Next-Generation Energy Systems)

Abstract

A lightweight and high-efficiency microwave-absorbing material was developed via an in situ solvothermal pyrolysis strategy by anchoring sphere-like Fe3O4 nanostructures onto bamboo-derived porous carbon (BPC). The resulting composites preserve the intrinsic anisotropic honeycomb architecture of bamboo while introducing uniformly distributed magnetic nanoparticles, enabling synergistic dielectric–magnetic loss. Electromagnetic parameters, alongside impedance matching, were successfully modulated through the optimization of precursor concentrations. Of the evaluated materials, BPC-0.9 stood out for its intense attenuation, recording an RLmin of −45.17 dB at a 1.8 mm thickness. Furthermore, a significant effective absorption bandwidth of 6.65 GHz was attained by the BPC-0.6 sample at only 2.2 mm. Several factors contribute to the boosted efficiency, starting with conductive and interfacial polarization losses paired with multiple scattering events. Furthermore, magnetic loss components, encompassing eddy current effects as well as natural and exchange resonances, play a pivotal role in optimizing the material’s response. Furthermore, radar cross-section (RCS) modeling reveals a substantial reduction of 19.9 dB·m2, verifying the material’s viability for real-world stealth technologies. Our findings offer a straightforward methodology for fabricating magnetic carbon structures from biomass with adjustable dielectric responses, underscoring their potential in high-performance energy conversion and low-density microwave absorption.
Keywords: bamboo-derived porous carbon; sphere-like Fe3O4 nanostructures; effective absorption bandwidth; reflect loss; radar cross-section bamboo-derived porous carbon; sphere-like Fe3O4 nanostructures; effective absorption bandwidth; reflect loss; radar cross-section
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MDPI and ACS Style

Zhang, Y.; Bi, J.; Yuan, T.; Xia, S.; Bao, M. A Hierarchically Structured Composite Integrating a Biomass-Derived Magnetic Carbon Framework with Various Magnetic Phases, Exhibiting Outstanding Electromagnetic Wave Absorption Performance. Molecules 2026, 31, 1775. https://doi.org/10.3390/molecules31101775

AMA Style

Zhang Y, Bi J, Yuan T, Xia S, Bao M. A Hierarchically Structured Composite Integrating a Biomass-Derived Magnetic Carbon Framework with Various Magnetic Phases, Exhibiting Outstanding Electromagnetic Wave Absorption Performance. Molecules. 2026; 31(10):1775. https://doi.org/10.3390/molecules31101775

Chicago/Turabian Style

Zhang, Yutao, Jiawei Bi, Tiancheng Yuan, Shenpeng Xia, and Minzhen Bao. 2026. "A Hierarchically Structured Composite Integrating a Biomass-Derived Magnetic Carbon Framework with Various Magnetic Phases, Exhibiting Outstanding Electromagnetic Wave Absorption Performance" Molecules 31, no. 10: 1775. https://doi.org/10.3390/molecules31101775

APA Style

Zhang, Y., Bi, J., Yuan, T., Xia, S., & Bao, M. (2026). A Hierarchically Structured Composite Integrating a Biomass-Derived Magnetic Carbon Framework with Various Magnetic Phases, Exhibiting Outstanding Electromagnetic Wave Absorption Performance. Molecules, 31(10), 1775. https://doi.org/10.3390/molecules31101775

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