Inverse Design of Diffusion–Absorption Hybrid Metasurfaces

Author:

Song Zicheng12ORCID,Zhang Ruicong12,Min Pingping12,Wang Tianyu3,Cao Wenxin12,He Yurong3,Wu Lin45ORCID,Zhu Jiaqi12ORCID,Qiu Cheng‐Wei6

Affiliation:

1. Center for Composite Materials and Structures Harbin Institute of Technology Harbin 150080 China

2. Zhengzhou Research Institute Harbin Institute of Technology Zhengzhou 450018 China

3. School of Energy Science and Engineering Harbin Institute of Technology Harbin 150080 China

4. Science, Mathematics, and Technology Singapore University of Technology and Design (SUTD) 8 Somapah Rd Singapore 487372 Singapore

5. Institute of High Performance Computing (IHPC) Singapore 138632 Singapore

6. Department of Electrical and Computer Engineering Faculty of Engineering National University of Singapore Singapore 117583 Singapore

Abstract

AbstractRandom metasurfaces have demonstrated significant potential in radar‐signature control applications, but their ability to manipulate scattering‐field reduction is limited by relying solely on the diffusion mechanism. To achieve flexible and arbitrary designs for scattering‐field reduction, a diffusion–absorption hybrid metasurface is proposed based on the Babinet principle. This hybrid metasurface adopts complementary bilayer metasurfaces to satisfy the impedance matching condition and employs a hybrid absorption and diffusion mechanism. Such complementary designs' intralayer resonances and interlayer couplings are tailored by multi‐objective optimization, achieving the precise and wideband design of absorptive elements with a specific reflection phase. By optimizing the spatial distributions of elements, diffusion is introduced and designs are achieved with a continuous scattering‐field reduction from 15.40 to 32.58 dB at 15 GHz. Three representative designed structures are fabricated and verified as proof of concept. The experimental results are consistent with the calculations and simulations, demonstrating a 12.32–24.46 dB scattering‐field reduction range. The proposed high‐freedom metasurface and the implementation multi‐objective optimization strategy collectively empower flexible wavefront manipulation, offering a viable solution for designing hybrid meta‐devices that incorporate multiple mechanisms.

Funder

Fundamental Research Funds for the Central Universities

China Scholarship Council

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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