Design of a Low-Scattering Dual-Band Metasurface Array Antenna Using Characteristic Mode Theory
Abstract
1. Introduction
- A CMT-based design strategy for dual-band low-scattering antennas is presented. By analyzing the spatial differences between radiation and scattering characteristic modes, targeted modal regulation is performed in the central region of the metasurface to realize dual-band radiation, while the outer-edge and corner regions are used for scattering control. In this way, dual-band radiation and scattering suppression are simultaneously realized within the same metasurface aperture.
- A step-by-step radiation–scattering co-design workflow driven by characteristic-mode parameters is established. Modal significance, radiation-mode current distributions, and modal radiation patterns are used to regulate the target radiation modes and determine the feeding configuration. The MWCs under plane-wave illumination are used to identify the dominant scattering modes. The corresponding scattering-mode current distributions are then used to determine the regions to be modified and the associated structural modification strategies. Therefore, each step of the proposed procedure is driven by modal parameters with clear physical significance, thereby reducing the dependence on empirical trial and error, blind parameter sweeps, and global optimization.
- The metasurface antenna designed under the guidance of CMT integrates dual-band radiation and broadband RCS reduction within a single low-profile structure. Measured results demonstrate peak gains of 16.0 dBi and 16.4 dBi for the two operating bands, respectively, and more than 10 dB monostatic RCS reduction is achieved across the target frequency band.
2. Antenna Design
2.1. Design of Antenna Radiation Characteristics
2.2. Design of Antenna Scattering Characteristics
2.3. Radiation and Scattering Performance of the Array Antenna
3. Measured Results
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Ref. | Antenna Size (mm3) | Operating Band(s) (GHz) | Peak Gain (dBi) | RCS Reduction Band(s) (GHz) | Maximum Monostatic RCS Reduction (dB) | Structural Complexity * | Extent of CMT Use |
|---|---|---|---|---|---|---|---|
| [11] | 160 × 160 × 28 | 5.10–5.40; 6.60–7.02 | 17.5; 16.9 | 9.40–13.70 | 21.0(x-pol.); 21.6(y-pol.) | High | None |
| [14] | 108 × 108 × 34 | 4.15–4.80; 7.80–8.40 | 10.0; 15.9 | 3–4.8; 7.2–10.2; 10.8–16 | 15.1(x-pol.); 12.2(y-pol.) | High | None |
| [15] | 240 × 240 × 36.6 | 0.85–0.93; 2.38–2.50 | 8.3; 10.9 | 0.745–1.02; 2.10–2.68; | 29.5(x-pol.); 15.1(y-pol.) | High | None |
| [24] | 160 × 160 × 7 | 4.35–4.45 | 13.5 | 3.25–6.60 | 25.9(x-pol.); 25.2(y-pol.) | High | Radiation & scattering |
| [25] | 56 × 56 × 7 | 8.87–9.78 | 13.4 | 8.87–9.78 | 16(x-pol.) | High | Radiation & scattering |
| [26] | 81 × 81 × 3.5 | 4.20–5.10; 5.60–6.50 | 9.5; 6.5 | 5.0–7.0 | 22.5(x-pol.); 20.0(y-pol.) | High | None |
| This work | 180 × 180 × 3 | 3.08–3.10; 3.12–3.18 | 16.0; 16.4 | 6.5–10.5 | 20.5(x-pol.); 29.5(y-pol.) | Low | Integrated radiation–scattering co-design |
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Zou, J.; Yang, H.; Li, T.; Wu, T.; Pan, Z.; Li, C.; Guo, Z. Design of a Low-Scattering Dual-Band Metasurface Array Antenna Using Characteristic Mode Theory. Materials 2026, 19, 3603. https://doi.org/10.3390/ma19173603
Zou J, Yang H, Li T, Wu T, Pan Z, Li C, Guo Z. Design of a Low-Scattering Dual-Band Metasurface Array Antenna Using Characteristic Mode Theory. Materials. 2026; 19(17):3603. https://doi.org/10.3390/ma19173603
Chicago/Turabian StyleZou, Jing, Huanhuan Yang, Tong Li, Tianhao Wu, Zixiang Pan, Can Li, and Zexu Guo. 2026. "Design of a Low-Scattering Dual-Band Metasurface Array Antenna Using Characteristic Mode Theory" Materials 19, no. 17: 3603. https://doi.org/10.3390/ma19173603
APA StyleZou, J., Yang, H., Li, T., Wu, T., Pan, Z., Li, C., & Guo, Z. (2026). Design of a Low-Scattering Dual-Band Metasurface Array Antenna Using Characteristic Mode Theory. Materials, 19(17), 3603. https://doi.org/10.3390/ma19173603

