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February 26, 2026Micromachines0 citationsOpen Access

Numerical Analysis and Design of an Ultra-Thin Flexible Transparent Metasurface for Broadband Radar-Infrared Compatible Stealth

LXLiang XuYLYijia LiYCYanjie Chen

Key Points

  • The research aims to develop an ultra-thin, flexible metasurface for improved compatibility with radar and infrared stealth technologies.
  • Designed a metasurface using multi-layer indium tin oxide (ITO) films on a PDMS substrate
  • Optimized the metasurface thickness to 2.65 mm for effective absorption
  • Conducted simulations to evaluate microwave absorption and infrared emissivity characteristics
  • Achieved over 90% absorption in the frequency range of 10.8–40.8 GHz
  • Demonstrated low infrared emissivity of 0.33
  • Maintained stable absorption across a 60-degree angle of transverse magnetic fields
  • Reduced radar cross-section by more than 10 dB even in bent configurations

Abstract

In response to the significant challenges posed by the rapid progress of multi-spectral detection technologies to traditional stealth techniques, this paper presents a flexible transparent metasurface structure that is compatible with radar and infrared stealth. It consists of multi-layer functional patterned indium tin oxide (ITO) films and a flexible polydimethylsiloxane (PDMS) substrate. The metasurface uses a high-duty-cycle multi-scale circular ring to achieve a microwave absorption bandwidth of 30 GHz and low infrared emissivity of 0.33 in an optimized ultra-thin 2.65 mm thickness system. The simulation results show that the metasurface achieves absorption exceeding 90% in the frequency range of 10.8–40.8 GHz, which covers common radar bands like X, Ku, K, and Ka. Furthermore, the structure exhibits polarization insensitivity and sustains stable absorption in a wide range of 60 degrees of transverse magnetic (TM) fields. Meanwhile, it decreases the radar cross-section (RCS) by more than 10 dB over a wide angular range even when bent. This study presents a feasible metasurface with ultra-thin, flexible, transparent, and multi-spectral compatibility for the next generation of stealth systems.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/699fe2fe95ddcd3a253e6782https://doi.org/10.3390/mi17030277
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