Ultrathin Metasurface-Enabled Electromagnetic Illusion for Target Platforms

Benefiting from the unprecedented wavefront manipulation capability of metamaterials and metasurfaces, electromagnetic illusion technology has enabled customized tailoring of scattering characteristics with high precision. However, most existing electromagnetic illusion schemes are restricted to generating spurious scattering fields from empty space, suffering from inherent limitations such as narrow operating bandwidth and single application scenario, which severely hinder their applicability and reliability in complex electromagnetic environments. To overcome these bottlenecks, we propose an ultrathin meta-illusion for a target platform, which can simultaneously conceal the scattering signature of a real object and replicate that of a desired virtual target via amplitude and phase control of a metasurface. As a proof of concept, we design and fabricate a meta-illusion device that mimics the electromagnetic response of a scaled-down car, and experimentally validate its performance in the microwave regime. Experimental results show that with the target object loaded on the device, the meta-illusion achieves the correlation coefficients of near-field distributions and far-field patterns better than 86% and 85%, respectively, verifying the high fidelity of the proposed illusion scheme. This work provides a promising pathway for advanced electromagnetic camouflage, intelligent illusion engineering, and multifunctional metasurface systems.

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Publication Details

Journal
Micromachines
Published
2026-09-30
DOI
https://doi.org/10.3390/mi17101146
Primary Topic
Metamaterials and Metasurfaces Applications
Type
article
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article

Ultrathin Metasurface-Enabled Electromagnetic Illusion for Target Platforms

Zhenxu Wang, Guoteng Ren, Jiangang Liang, Yujie Hong et al.
Micromachines
Metamaterials and Metasurfaces Applications
article

Ultrathin Metasurface-Enabled Electromagnetic Illusion for Target Platforms

Zhenxu Wang, Guoteng Ren, Jiangang Liang, Yujie Hong, Yali Zeng, Wenlong Li, Jiajun Wu, Jiahe Wang, Zhuochao Wang, Tong Cai, Wenye Ji
article en

Abstract

Benefiting from the unprecedented wavefront manipulation capability of metamaterials and metasurfaces, electromagnetic illusion technology has enabled customized tailoring of scattering characteristics with high precision. However, most existing electromagnetic illusion schemes are restricted to generating spurious scattering fields from empty space, suffering from inherent limitations such as narrow operating bandwidth and single application scenario, which severely hinder their applicability and reliability in complex electromagnetic environments. To overcome these bottlenecks, we propose an ultrathin meta-illusion for a target platform, which can simultaneously conceal the scattering signature of a real object and replicate that of a desired virtual target via amplitude and phase control of a metasurface. As a proof of concept, we design and fabricate a meta-illusion device that mimics the electromagnetic response of a scaled-down car, and experimentally validate its performance in the microwave regime. Experimental results show that with the target object loaded on the device, the meta-illusion achieves the correlation coefficients of near-field distributions and far-field patterns better than 86% and 85%, respectively, verifying the high fidelity of the proposed illusion scheme. This work provides a promising pathway for advanced electromagnetic camouflage, intelligent illusion engineering, and multifunctional metasurface systems.

MicromachinesVol. 17(10)
National University of Singapore (SG), Northwestern Polytechnical University (CN), Air Force Engineering University (CN)
Openalex Percentile: Top 30%
Metamaterials and Metasurfaces Applications
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Ultrathin Metasurface-Enabled Electromagnetic Illusion for Target Platforms — Zhenxu Wang, Guoteng Ren, et al. · Micromachines (2026) | TGRS Research Map | TGRS