A Broadband Metasurface for Effective Control of Transmission Phase by Applied Voltage
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https://doi.org/10.13052/2025.ACES.J.401004关键词:
Active metasurface, transmission phase, varactor tuning摘要
This paper presents a reconfigurable transmissive metasurface operating at 8.5 GHz. The metasurface consists of a four-layer stacked structure of circular radiating patches, with varactor diodes integrated into the patches to achieve 360∘ continuous transmission phase control. The structure exhibits a transmission loss of less than 2 dB and a relative bandwidth of approximately 12%. By tuning the capacitance of the varactor diodes, the transmission phase can be precisely and continuously adjusted. Compared to switch-diode-based metasurfaces, this approach offers a simpler design and enables dynamic continuous phase modulation. Both simulation and measurement results, including the relationship between transmission magnitude and phase shift versus bias voltage, show strong agreement. The metasurface demonstrates excellent bandwidth characteristics. This work provides a valuable strategy for designing dynamically tunable broadband metasurfaces and holds significant potential for applications in high-gain phased array antennas and efficient beamforming systems.
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参考
C. L. Holloway, E. F. Kuester, J. A. Gordon, J. O’Hara, J. Booth, and D. R. Smith, “An overview of the theory and applications of metasurfaces: The two-dimensional equivalents of metamaterials,” IEEE Antennas Propag. Mag., vol. 54, no. 2, pp. 10–35, Apr. 2012.
N. Yu, P. Genevet, M. A. Kats, F. Aieta, J.-P. Tetienne, F. Capasso, and Z. Gaburro, “Light propagation with phase discontinuities: Generalized laws of reflection and refraction,” Science, vol. 334, no. 6054, pp. 333–337, Oct. 2011.
H. Li, G. Wang, H. Xu, T. Cai, and J. Liang, “X-band phase-gradient metasurface for high-gain lens antenna application,” IEEE Trans. Antennas Propag., vol. 63, no. 11, pp. 5144–5149, Nov. 2015.
H. Hao, S. Zheng, Y. Tang, and X. Ran, “Broadband transmissive amplitude-and-phase metasurface for vortex beam generation and hologram,” Phys. Lett. A, vol. 434, p. 128036, 2022.
Y. Lv, X. Ding, B. Wang, and D. E. Anagnostou, “Scanning range expansion of planar phased arrays using metasurfaces,” IEEE Trans. Antennas Propag., vol. 68, no. 3, pp. 1402–1410, Mar. 2020.
H. Ali, M. U. Afzal, K. P. Esselle, and R. M. Hashmi, “Integration of geometrically different elements to design thin near-field metasurfaces,” IEEE Access, vol. 8, pp. 225336–225346, 2020.
S. Tiwari, A. K. Singh, and A. Dubey, “Millimeter-wave wide-angle beamsteerable transmission-type metasurface lens antenna,” Proc. IEEE Microwaves, Antennas, and Propagation Conf. (MAPCON), Bangalore, India, Dec. 2022.
F. Qin, L. Wan, L. Li, H. Zhang, G. Wei, and S. Gao, “A transmission metasurface for generating OAM beams,” IEEE Antennas Wireless Propag. Lett., vol. 17, no. 10, pp. 1793–1796, Oct. 2018.
J. Liang, G. Huang, J. Zhao, Z. Gao, and T. Yuan, “Wideband phase-gradient metasurface antenna with focused beams,” IEEE Access, vol. 7, pp. 20767–20772, 2019.
T. Huang, Z. Wu, S. Huang, Z. Wen, W. Jiang, J. Xu, J. Wang, and Y. Luo, “Broadband transreflective metasurface for multifunctional dual-band OAM engineering,” IEEE Trans. Antennas Propag., vol. 72, no. 9, pp. 7041–7047, Sep. 2024.
Y. Yuan, X. Ding, K. Zhang, and Q. Wu, “Planar efficient metasurface for vortex beam generating and converging in microwave region,” IEEE Trans. Magn., vol. 53, no. 6, pp. 1–4, June 2017.
J-Y. Yin, Z. Wu, F. Li, and J.-Y. Deng, “Transmission-type 2-bit coding polarization conversion metasurface with radiation characteristic,” Optics Express, vol. 33, pp. 85–97, 2025.
B. Lin, J. Guo, L. Lv, Z. Liu, X. Ji, and J. Wu, “An ultra-wideband reflective phase gradient metasurface using Pancharatnam-Berry phase,” IEEE Access, vol. 7, pp. 13317–13325, 2019.
C. Fang, C. Wu, Z. J. Gong, S. Zhao, A. Q. Sun, Z. Y. Wei, and H. Q. Li, “Broadband and high-efficiency vortex beam generator based on a hybrid helix array,” Opt. Lett., vol. 43, no. 7, pp. 1538–1541, Apr. 2018.
Y. Ran, J. Liang, H. Li, and T. Cai, “High-performance broadband vortex beam generator using reflective Pancharatnam–Berry metasurface,” Opt. Commun., vol. 427, pp. 101–106, Nov. 2018.
H. Wang, Y. F. Li, H. Y. Chen, Y. J. Han, S. Sui, Y. Fan, Z. T. Yang, J. F. Wang, J. Q. Zhang, S. B. Qu, and Q. Cheng, “Multi-beam metasurface antenna by combining phase gradients and coding sequences,” IEEE Access, vol. 7, pp. 62087-62094, 2019.
C. Zhang, J. Gao, X. Cao, S. Li, H. Yang, and T. Li, “Multifunction tunable metasurface for entire-space electromagnetic wave manipulation,” IEEE Trans. Antennas and Propag., vol. 68, no. 4, pp. 3301-3306, Apr. 2020.
H. Y. Shi, L. Y. Wang, G. T. Peng, X. M. Chen, J. X. Li, S. T. Zhu, A. X. Zhang, and Z. Xu, “Generation of multiple modes microwave vortex beams using active metasurface,” IEEE Antennas Wireless Propag. Lett., vol. 18, no. 1, pp. 59-63, Jan. 2019.
C. Zhang, Y. Luo, N. Yan, X. Guo, Y. Guo, and K. Ma, “A reconfigurable metasurface with precise phase distribution for both transmission and reflection functions,” IEEE Trans. Antennas Propag., vol. 72, no. 9, pp. 7154–7163, Sep. 2024.
D. Y. Lau and S. V. Hum, “A planar reconfigurable aperture with lens and reflectarray modes of operation,” IEEE Trans. Microw. Theory Techn., vol. 58, no. 12, pp. 3547–3555, Dec. 2010.
B. W. Zheng, H. Ren, S. S. An, H. Tang, H. Li, M. Haerinia, Y. X. Dong, C. Fowler, and H. L. Zhang, “Tunable metasurface with dynamic amplitude and phase control,” IEEE Access, vol. 9, pp. 104522–104529, 2021.
J. R. Wang, Y. J. Zhang, and M. S. Tong, “A broadband metasurface with voltage-controlled transmission phase,” 2021 IEEE Int. Symp. Antennas Propag. and USNC/URSI Radio Sci. Meeting, Singapore, Dec. 2021.
J. Howell, “Microstrip antennas,” IEEE Trans. Antennas Propag., vol. 23, no. 1, pp. 90–93, Jan. 1975.
T. Yuan, J. Xie, and X. Yang, “A high-gain, polarization-universal metasurface lens antenna for millimeter-wave communication,” AEU - Int. J. Electron. Commun., vol. 193, no. 155727, 2025.
Z. Qu, J. R. Kelly, and Y. Gao, “Analysis of the transmission performance limits for a multilayer transmitarray unit cell,” IEEE Trans. Antennas Propag., vol. 70, no. 3, pp. 2334–2339, Mar. 2022.
D. M. Pozar, Microwave Engineering. New York, NY, USA: John Wiley, 2008.
W. R. Smythe, Static and Dynamic Electricity. New York, NY, USA: McGraw-Hill, 1968.
H. Liu, H. Zhang, and L. Deng, “Design and implementation of a reconfigurable transmitarray employing varactor-tuned Huygens elements for dynamic beam shaping,” IEEE Antennas Wireless Propag. Lett., vol. 24, no. 6, pp. 1542–1546, June 2025.
W. S. Hu, Y. H. Liu, C. Y. Gong, S. Y. Wang, and Y. B. Li, “Dual-frequency co-aperture control of beam scanning by programmable metasurface,” IEEE Antennas Wireless Propag. Lett., vol. 22, no. 12, pp. 3013–3017, Dec. 2023.


