A Complex‐Frequency Framework for Kerker Unidirectionality in Photonic Resonators

ABSTRACT Electromagnetic scattering exhibits various anomalous behaviors, such as forward or backward scattering effects known as the Kerker conditions. These anomalies appear in non‐Hermitian photonic resonators and are mathematically described by operators with complex eigenfrequencies. Here, an effective Hamiltonian approach is proposed to analyze the complex eigenvalues of scattering systems. By imposing zero scattering constraints (i.e., transmission or reflection zeros) on the Hamiltonian of a two‐mode photonic system, the complex eigenvalues corresponding to transmissionless and reflectionless modes are calculated and it is revealed that the Kerker anomalies are a result of spontaneous parity‐time (PT)‐symmetry‐breaking in the complex plane. This formalism provides a generic method to study non‐Hermitian scattering and offers physical insights into coupled‐mode resonating systems. Furthermore, it provides universal rules for designing photonic devices with unidirectional scattering and full 2π phase modulation.

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Publication Details

Journal
Laser & Photonics Review
Published
2026-10-09
DOI
https://doi.org/10.1002/lpor.202500836
Primary Topic
Quantum Mechanics and Non-Hermitian Physics
Type
article
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A Complex‐Frequency Framework for Kerker Unidirectionality in Photonic Resonators

Rémi Colom, Patrice Genevet, Loubnan Abou-Hamdan, Felix Binkowski et al.
Laser & Photonics Review
Quantum Mechanics and Non-Hermitian Physics
article

A Complex‐Frequency Framework for Kerker Unidirectionality in Photonic Resonators

Rémi Colom, Patrice Genevet, Loubnan Abou-Hamdan, Felix Binkowski, Aloke Jana, Nour Abouyoussef, cooper carlson, Sven Burger, Adam Overvig
article en

Abstract

ABSTRACT Electromagnetic scattering exhibits various anomalous behaviors, such as forward or backward scattering effects known as the Kerker conditions. These anomalies appear in non‐Hermitian photonic resonators and are mathematically described by operators with complex eigenfrequencies. Here, an effective Hamiltonian approach is proposed to analyze the complex eigenvalues of scattering systems. By imposing zero scattering constraints (i.e., transmission or reflection zeros) on the Hamiltonian of a two‐mode photonic system, the complex eigenvalues corresponding to transmissionless and reflectionless modes are calculated and it is revealed that the Kerker anomalies are a result of spontaneous parity‐time (PT)‐symmetry‐breaking in the complex plane. This formalism provides a generic method to study non‐Hermitian scattering and offers physical insights into coupled‐mode resonating systems. Furthermore, it provides universal rules for designing photonic devices with unidirectional scattering and full 2π phase modulation.

Laser & Photonics Review
Stevens Institute of Technology (US), Centre National de la Recherche Scientifique (FR), Colorado School of Mines (US), Zuse Institute Berlin (DE), Cornell University (US), Groupe de Recherche en Droit, Économie, Gestion (FR)
Openalex Percentile: Top 19%
Quantum Mechanics and Non-Hermitian Physics
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A Complex‐Frequency Framework for Kerker Unidirectionality in Photonic Resonators — Rémi Colom, Patrice Genevet, et al. · Laser & Photonics Review (2026) | TGRS Research Map | TGRS