Non-Hermitian multi-cavity reflective optical limiters engineered via exceptional points of degeneracy

A non-Hermitian multi-cavity platform based on a 1D photonic crystal multilayer stack is demonstrated to simultaneously manifest angular filtering and reflective optical limiting via the manipulation of exceptional points of degeneracy (EPDs). Mapping an N = 4 coupled-cavity network onto an alternating ZnS–cryolite thin-film sequence stabilizes the system at a permanent EPD within the low-power, normal-incidence regime, yielding a high-transmission, maximally flat Butterworth filter profile. Oblique illumination breaks the degeneracy, providing angular filtering characterized by a narrow 19° peak-transmission cone. Under high-power laser irradiation, non-uniform internal field profiles trigger a thermal detuning cascade across K = 3 active nonlinear ZnS cavities. This spatial perturbation shifts the refractive indices, breaks the effective Hamiltonian matrix symmetry, and accelerates the decay of transmittance above a limiting threshold of 0.7 MW/cm2, driving a sharp transition into a protective, highly reflective state. Under concurrent high-power oblique incidence, these geometric and nonlinear mechanisms act as complementary pathways, narrowing the transmission cone to ensure robust, wide-angle optical protection. Engineering a non-Hermitian degeneracy within distributed nonlinear cavities establishes a rigorous paradigm for passive optoelectronic protection, lens-free fluorescence imaging, and optical isolation.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-09-15
DOI
https://doi.org/10.1063/5.0350679
Primary Topic
Quantum Mechanics and Non-Hermitian Physics
Type
article
Field-Weighted Citation Impact
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article

Non-Hermitian multi-cavity reflective optical limiters engineered via exceptional points of degeneracy

Ilya Vitebskiy, Igor Anisimov, A. A. Chabanov, Francesco Riboli et al.
Journal of Applied Physics
Quantum Mechanics and Non-Hermitian Physics
article

Non-Hermitian multi-cavity reflective optical limiters engineered via exceptional points of degeneracy

Ilya Vitebskiy, Igor Anisimov, A. A. Chabanov, Francesco Riboli, Federico Tommasi, Diederik S. Wiersma, Stefano Cavalieri, R. Kononchuk, L. Salvini, W. Du
article en

Abstract

A non-Hermitian multi-cavity platform based on a 1D photonic crystal multilayer stack is demonstrated to simultaneously manifest angular filtering and reflective optical limiting via the manipulation of exceptional points of degeneracy (EPDs). Mapping an N = 4 coupled-cavity network onto an alternating ZnS–cryolite thin-film sequence stabilizes the system at a permanent EPD within the low-power, normal-incidence regime, yielding a high-transmission, maximally flat Butterworth filter profile. Oblique illumination breaks the degeneracy, providing angular filtering characterized by a narrow 19° peak-transmission cone. Under high-power laser irradiation, non-uniform internal field profiles trigger a thermal detuning cascade across K = 3 active nonlinear ZnS cavities. This spatial perturbation shifts the refractive indices, breaks the effective Hamiltonian matrix symmetry, and accelerates the decay of transmittance above a limiting threshold of 0.7 MW/cm2, driving a sharp transition into a protective, highly reflective state. Under concurrent high-power oblique incidence, these geometric and nonlinear mechanisms act as complementary pathways, narrowing the transmission cone to ensure robust, wide-angle optical protection. Engineering a non-Hermitian degeneracy within distributed nonlinear cavities establishes a rigorous paradigm for passive optoelectronic protection, lens-free fluorescence imaging, and optical isolation.

Journal of Applied PhysicsVol. 140(11)
United States Air Force Research Laboratory (US), National Institute of Optics (IT), European Theoretical Spectroscopy Facility (BE), Istituto Nazionale di Fisica Nucleare, Sezione di Firenze (IT), Istituto Nazionale di Ricerca Metrologica (IT), University of Florence (IT), The University of Texas at San Antonio (US)
Openalex Percentile: Top 13%
Quantum Mechanics and Non-Hermitian Physics
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