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January 25, 2026Photonics2 citationsOpen Access

Four-State Programmable Quasi-BIC Metasurface with Polarization-Divergent Dispersion Rewriting

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WWWenbin WangYMYun Meng

Key Points

  • The aim is to enable four-state nonvolatile switching in a metasurface while considering polarization effects.
  • Designed a dual-phase-change material metasurface with four switchable configurations.
  • Conducted angle-resolved transmission measurements to analyze polarization responses.
  • Examined resonance shifts for different polarizations under controlled conditions.
  • For p polarization, resonance red-shifts from ~1331 nm to ~1355 nm with a quality factor reduction.
  • For s polarization, resonance shifts significantly from ~1635 nm to ~1790 nm with a quality factor increase.
  • The metasurface allows independent programming of polarization-selective radiative coupling.

Abstract

A central challenge in reconfigurable photonics based on quasi bound states in the continuum (quasi-BICs) is to move beyond binary switching toward multistate and polarization-aware programmability. Here we propose a dual-phase-change material (PCM) metasurface that enables four-state nonvolatile switching and polarization-divergent dispersion rewriting within a single unit cell. Two independently switchable PCM layers provide four addressable configurations (0-0, 0-1, 1-0, 1-1) at a fixed geometry, allowing the resonance landscape to be reprogrammed through complex-index rewriting without structural modification. Angle-resolved transmission maps reveal fundamentally different evolution pathways for orthogonal polarizations. For p polarization, the quasi-BIC exhibits strong state sensitivity with dispersion reshaping and multi-branch features near normal incidence; the resonance red-shifts from ~1331 nm to ~1355 nm while the quality factor decreases from ~6.7 × 104 to ~4.0 × 104. In contrast, for s polarization, a single weakly dispersive branch translates coherently across states, producing a much larger shift from ~1635 nm to ~1790 nm while the quality factor increases from ~9.0 × 103 to ~1.8 × 104. The opposite quality-factor trajectories, together with the polarization-contrasting tuning ranges, demonstrate that dual-PCM programming reconfigures polarization-selective radiative coupling rather than imposing a uniform resonance shift. This compact two-bit metasurface platform provides multistate, high-Q control with active dispersion engineering, enabling polarization-multiplexed reconfigurable filters, state-addressable sensors, and other programmable photonic devices.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6975b26ffeba4585c2d6ddfchttps://doi.org/10.3390/photonics13020105
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