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March 19, 2026Scientific Reports3 citationsOpen Access

A multifunctional bi-anisotropic metasurface with reflection-transmission polarization conversion and narrow bandpass transmission characteristics

MNMuhammad NasirSKSlawomir KozielAPAnna Pietrenko-Dabrowska

Key Points

  • The aim is to develop a multifunctional bi-anisotropic metasurface capable of polarization transformation and narrow bandpass transmission.
  • Proposing a patterned polarization-converting surface combined with a cross-dipole bandpass frequency-selective surface.
  • Validating concepts through equivalent circuit models of both the bandpass frequency-selective surface and the metasurface.
  • Fabricating a prototype with 17 × 29 unit-cells and performing measurements.
  • Achieved an insertion loss of less than -1 dB in the narrow bandpass region.
  • Demonstrated two reflective circularly polarized and cross-polarized bands in the response.
  • Maintained symmetric transmission responses for both forward and backward excitation.

Abstract

A novel multifunctional bi-anisotropic omega metasurface (MS) that simultaneously supports polarization transformation in both reflection and transmission modes, as well as narrow bandpass transmission functionality, is proposed by combining a patterned polarization-converting surface with a cross-dipole bandpass frequency-selective surface (BP-FSS). The BP-FSS, etched inside the metal ground, provides a reflection-transmission frequency response and acts as an equivalent ground plane. When the incident wave is illuminated from +Z-side (forward direction), the entire MS exhibits two reflective circularly polarized and cross-polarized bands separated by a low-loss bandpass window. Under the −Z-side (backward direction) excitation, the structure functions as a partial reflector (PR) outside the bandpass region without altering the polarization state of the incident wave. For both ±Z-sided excitation, the MS maintains symmetric transmission responses, realizing a narrow bandpass window with an insertion loss (IL) of less than − 1 dB and two partial transmissive cross-polarization (TCP) conversion bands. The proposed concept is validated through equivalent circuit models (ECMs) of the BP-FSS and the cascaded MS, along with measurements of a fabricated 17 29 unit-cell prototype, confirming excellent agreement with simulations. Compared with existing MSs, the proposed design uniquely combines multiple functionalities, making it a potential alternative to frequency-selective rasorbers and a promising candidate for antennas and communication system applications.

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Cite This Study

Nasir et al. (2026) studied this question.

synapsesocial.com/papers/69bb9357496e729e6298164fhttps://doi.org/10.1038/s41598-026-44437-0
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