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March 1, 2026Science Advances2 citationsOpen Access

Noise-resilient exceptional point sensing with immunity to undesired perturbations

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SLSerena LandersWTWilliam TuxburyIVIlya Vitebskiy

Key Points

  • To enhance sensor sensitivity using non-resonant exceptional point degeneracies in microwave metamaterials while mitigating issues caused by local perturbations.
  • Experimental implementation of passive periodic microwave metamaterials
  • Investigation of the Bloch spectrum for non-resonant exceptional point degeneracies
  • Analysis of reflectance variation near non-resonant EPDs under perturbations
  • Demonstrated sublinear variation of reflectance near non-resonant EPDs
  • Achieved immunity to local perturbations and noise
  • Enhanced sensor performance compared to traditional resonant EPDs

Abstract

Exceptional point degeneracies (EPDs) are non-Hermitian singularities where K eigenvalues and their corresponding eigenvectors coalesce. When a small perturbation is induced, the eigenvalue detuning from an EPD follows a K th-root sublinear expansion, which provides a means of enhancing the sensitivity (frequency shift) of resonant-based sensors. On the downside, resonant-based sensors are susceptible to cavity imperfections, local mechanical disturbances (temperature variations, vibrations), and other experimental uncertainties. Here, we overcome this problem by experimentally implementing passive periodic microwave metamaterials with nonresonant EPDs (NR-EPDs) occurring in their Bloch spectrum. We demonstrate a sublinear variation of the reflectance near NR-EPDs to a specific class of (global) perturbations and propose its usage for ultrasensitive sensing that is immune to undesired (local) perturbations. The sensitivity is shielded from technical or fundamental noise that typically degrades the signal-to-noise performance of resonant EPDs.

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Cite This Study

Landers et al. (2026) studied this question.

synapsesocial.com/papers/69a3ddf3ec16d51705d30450https://doi.org/10.1126/sciadv.aeb7018
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