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Topological Phase Control via Dynamic Complex Pole-Zero Engineering

2025/05/22 by Alex Krasnok, Krasnok, Alex
Computer Science · Physics and Astronomy · #Applied Physics (physics.app-ph) #FOS: Physical sciences #Neural Networks and Reservoir Computing #Optics (physics.optics) #Quantum Mechanics and Non-Hermitian Physics #Topological Materials and Phenomena

paper · pdf · doi:10.48550/arxiv.2505.16859

openalex publication_date 2025/05/22 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

Precise optical phase control is crucial for innovations in telecommunications, optical computing, quantum information processing, and advanced sensing. However, conventional phase modulators often introduce parasitic amplitude modulation and struggle to provide a full 2π phase shift efficiently. This work introduces a novel paradigm for complete and robust phase control at constant amplitude by dynamically engineering the pole-zero constellation of resonant photonic systems within the complex frequency plane. We theoretically elucidate and validate two distinct approaches: first, by modulating the complex frequency of an excitation signal to trace an iso-amplitude contour (apollonian circle) around a static reflection zero; and second, by dynamically tuning the physical parameters of the resonator such that its reflection zero encircles a fixed-frequency monochromatic excitation, again constraining operation to an iso-amplitude trajectory. Both methods demonstrate the ability to impart a full 2π phase shift while maintaining a pre-defined, constant reflection amplitude, thereby eliminating amplitude-to-phase distortion. These results leverage the topological nature of phase accumulation around critical points (poles and zeros), a concept gaining significant traction in non-Hermitian and topological photonics.

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