Integrated Electromagnetic Wave Absorption‐Transmission via 3D‐Printed Bilayered Metamaterial

Hanxu Sun, Tianyi Wang, Zhaofan He, Li Geng, Ning Qu, Zhen Yu +3 · Wiley · 2026

A bilayered 3D-printed metamaterial achieves integrated electromagnetic wave absorption and transmission, enhancing performance for communication systems.

High AI ConfidenceStrong SourceLaboratory ResearchEarly Research

Plain English summary

This research presents a new bilayered metamaterial designed for effective absorption and transmission of electromagnetic waves. The structure combines a dielectric absorber with a frequency-selective surface, allowing it to perform well across different frequency ranges while being thinner than existing solutions.

Why this matters

The ability to absorb and transmit electromagnetic waves efficiently is crucial for applications in communication systems and stealth technology. This research could lead to advancements in low-observable radomes and improve the performance of modern electronic devices.

Key findings

  • Developed a bilayered 3D-printed metamaterial.
  • Achieved a transmission bandwidth of 3.5 GHz.
  • Achieved an absorption bandwidth of 6 GHz.
  • Reduced thickness by half compared to existing solutions.
  • Outperformed existing frequency-selective rasorbers.

What's new

The integration of a dielectric absorber with a frequency-selective surface in a bilayered structure for improved electromagnetic wave management.

Limitations

The abstract does not provide details on practical applications or real-world testing of the material.

Commercial context

The research is still in the laboratory phase and lacks commercial availability.

Publication

Publisher
Wiley
Publication date
January 19, 2026
Research type
Paper
License
http://onlinelibrary.wiley.com/termsAndConditions#vor

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Method note: Summaries and ratings on this page are generated by AI from the abstract only. Read the original paper for full context. · Model: gpt-4o-mini-2024-07-18