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Abstract

<title>Abstract</title> <p>We investigate the differential reflectance signature of Fano resonance and antiresonance in a reflective plasmonic grating structure. A double-layer Au diffraction grating—designed to operate in contact with ethanol under 780-nm illumination from the analyte side—is fabricated on a sapphire substrate using electron-beam lithography and vacuum deposition. Rigorous coupled-wave analysis reveals an asymmetric reflectance peak with steep angular variation, while numerical differentiation of the reflectance spectrum produces a sharp differential reflectance dip. Reflectance mapping combined with Rayleigh anomaly and propagating surface plasmon dispersion relations, along with electric-field distributions, indicates that the observed response originates from Fano-type coupling between localized surface plasmons at the grating edges and propagating surface plasmons at the Au/ethanol interface. Angular reflectance measurements reproduce both the asymmetric reflectance peak and differential reflectance dip, in good agreement with the simulations. The potential sensing performance is evaluated from the simulated refractive-index sensitivity and experimentally obtained linewidth. These results demonstrate that differential reflectance provides a useful readout of Fano resonance and antiresonance in reflective plasmonic grating sensors, particularly for low-refractive-index liquids.</p>

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Keywords

reflectance differential grating from surface

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