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March 13, 2026Nano-Micro Letters6 citationsOpen Access

Self-Sensing NiFe@N-doped Carbon Aerogel: Integrating Excellent Radar Stealth, Inherent Structural Health Monitoring, Thermal Management, and Flame Retardancy

XDXiaosen DuJZJianhua ZhouJYJiarui Yu

Key Points

  • The central aim is to develop a multifunctional carbon aerogel with enhanced electromagnetic wave protection, thermal management, and structural health monitoring capabilities.
  • Synthesis of NiFe@N-doped carbon aerogel via in situ growth, freeze-drying, and pyrolysis carbonization
  • Characterization of electromagnetic wave absorption and thermal properties
  • Evaluation of strain sensing capabilities in the 3D conductive network
  • Achieved a reflection loss of -53.49 dB at 1.93 mm
  • Demonstrated an effective absorption bandwidth of 6.24 GHz (11.76-18.00 GHz)
  • Exhibited excellent radar stealth and flame retardancy
  • Showed potential for structural health monitoring through strain sensing capabilities

Abstract

Biomass carbon-based aerogels derived from collagen protofibrils are gaining considerable attention in electromagnetic protection. However, achieving a well-designed microstructure, optimized magnetic and dielectric loss components, and integrated multifunctionality within a single material system remains a significant challenge. Herein, a three-dimensional (3D) hierarchically biomimetic honeycomb-like porous magnetic NiFe@N-doped carbon aerogel (NFNCA) is obtained via a simple strategy involving in situ growth, freeze-drying, and pyrolysis carbonization. Driven by the synergy of a 3D conductive networking structure, magnetic and dielectric multi-components, numerous heterogeneous interfaces, and diverse loss pathways, the optimized NFNCA exhibits exceptional electromagnetic wave attenuation capability, evidenced by a minimum reflection loss (RL) of -53.49 dB at 1.93 mm and an effective absorption bandwidth of 6.24 GHz (11.76-18.00 GHz). Furthermore, the exceptional radar stealth, infrared thermal stealth, thermal management, and flame retardancy characteristics of NFNCA render it a promising candidate for multiple applications in demanding environments. Interestingly, the 3D cross-linked conductive network of NFNCA can serve as strain sensors to detect changes in the internal structure of carbon aerogels. Hence, this work provides a feasible design strategy for developing lightweight, high-efficiency, and multifunctional biomass-based carbon aerogel electromagnetic wave absorbing materials for various application scenarios.

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Cite This Study

Du et al. (2026) studied this question.

synapsesocial.com/papers/69b3acd302a1e69014ccee56https://doi.org/10.1007/s40820-026-02128-5
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