Macroscopic Zeno effect in Su-Schrieffer-Heeger photonic topological insulator
S.K. Ivanov, S.A. Zhuravitskii, N.N. Skryabin, I.V. Dyakonov, A.A., Kalinkin, S.P. Kulik, Y.V. Kartashov, V.V. Konotop, and V.N. Zadkov

TL;DR
This paper demonstrates a macroscopic Zeno effect in a topological photonic insulator, showing increased transparency due to controlled losses, independent of exceptional points, and robust against disorder.
Contribution
It introduces the macroscopic Zeno effect in a topological photonic system without relying on exceptional points, expanding understanding of loss-induced transparency.
Findings
Increased transparency observed with controlled losses in topological modes.
The effect is robust against disorder in the non-Hermitian topological regime.
Coupling with non-topological arrays decreases output power with absorption.
Abstract
The quantum Zeno effect refers to slowing down of the decay of a quantum system that is affected by frequent measurements. Nowadays, the significance of this paradigm is extended far beyond quantum systems, where it was introduced, finding physical and mathematical analogies in such phenomena as the suppression of output beam decay by sufficiently strong absorption introduced in guiding optical systems. In the latter case, the effect is often termed as macroscopic Zeno effect. Recent studies in optics, where enhanced transparency of the entire system was observed upon the increase of the absorption, were largely focused on the systems obeying parity-time symmetry, hence, the observed effect was attributed to the symmetry breaking. While manifesting certain similarities in the behavior of the transparency of the system with the mentioned studies, the macroscopic Zeno phenomenon reported…
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Taxonomy
TopicsTopological Materials and Phenomena · Quantum Mechanics and Non-Hermitian Physics · Nonlinear Photonic Systems
