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May 11, 2026Nanophotonics2 citationsOpen Access

Wavefront Selective Modal Excitations for Optimally Informative Sensing in Fano‐Resonant Metasurfaces

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NFNick FeldmanNFNelson de Gaay FortmanABArie J. den Boef

Key Points

  • The research aims to improve sensing capabilities using structured wavefronts to excite quasi-BIC modes in metasurfaces.
  • Theoretical analysis of eigenmode spectrum of dielectric quasi-BIC metasurfaces.
  • Exploration of incident excitations designed to selectively excite quasi-BIC modes.
  • Utilization of information theory to assess the informativeness of various excitations.
  • Structured incident excitations show a significant gain in sensing information compared to conventional plane wave illuminations.
  • Quantitative measures indicate that wavefront selective modal excitations outperform standard methods in sensitivity to nanoscale disturbances.

Abstract

ABSTRACT Fano‐resonant metasurfaces governed by quasi‐bound states in the continuum have recently sparked an enormous interest in the sensing community due to their spectacular sensitivity to nanoscale disturbances. Here, a plane wave or focused illumination is typically used to excite the quasi‐BIC modes. In this paper, we theoretically demonstrate how structuring an incident excitation leads to a gain in information about relevant nanoscale perturbations to be detected. We analyze the full eigenmode spectrum of a dielectric quasi‐BIC metasurface, and uncover eigenmodes that are incompatible with trivial illuminations such as plane waves. By utilizing the concept of “maximum information states,” that was recently developed by the wavefront shaping community, we engineer incident excitations that can selectively excite these quasi‐BIC modes. By using information theory, we quantitatively demonstrate that such wavefront selective modal excitations can be more informative than conventional excitations based on plane waves.

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Cite This Study

Feldman et al. (2026) studied this question.

synapsesocial.com/papers/6a0172233a9f334c282722c2https://doi.org/10.1002/nap2.70119
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