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February 11, 2026Nano Research0 citationsOpen Access

Magnetic dielectric loss synergistic mechanism and wave absorption-corrosion dual functionality of ZnSe/CoSe@CNF multicomponent composites

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QLQi LiZGZhenguo GaoWZW. Zhou

Key Points

  • The research focuses on enhancing electromagnetic wave absorption using a multicomponent composite material.
  • Developed a ZnSe/CoSe@CNF composite material using dielectric-magnetic synergy.
  • Evaluated electromagnetic wave absorption performance through simulations and experimental validations.
  • Analyzed the composite structure and properties connecting dielectric and magnetic components.
  • The Z 2 CSF-3 composite achieved a minimum reflection loss of -56.58 dB.
  • Effective absorption bandwidth reached 7.60 GHz, indicating broad wave absorption capability.
  • Demonstrated enhanced electromagnetic wave absorption performance through density functional theory calculations.

Abstract

With the widespread adoption of electronic devices and communication technologies, electromagnetic radiation issues have become increasingly prominent. Traditional wave-absorbing materials can no longer meet current demands. This study addresses the challenge of single-component materials having a limited loss mechanism by adopting a dielectric-magnetic synergy strategy to prepare a multi-component ZnSe/CoSe@CNF (ZCSF) composite, achieving excellent electromagnetic wave absorption (EMA). The continuous conductive network constructed by carbon nanofibers (CNF) and the favorable conductivity of ZnSe significantly enhance dielectric loss, while CoSe effectively improves magnetic loss. The synergy among multiple components enables efficient matching of dielectric and magnetic losses. The results show that the Z 2 CSF-3 composite exhibits outstanding EMA performance, with a minimum reflection loss and maximum effective absorption bandwidth reaching -56.58 dB and 7.60 GHz, respectively. By combining density functional theory (DFT) calculations with CST simulations, the multi-component synergistic loss mechanism was theoretically validated to enhance EMA performance, confirming that this material can serve as a high-performance electromagnetic wave (EMW) absorber. This research provides an effective strategy for designing high-performance multi-component EMA materials through dielectric-magnetic synergy effects.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/698be001058ab1890a13baadhttps://doi.org/10.26599/nr.2026.94908525
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