Non-reciprocal Synchronization in Thermal Rydberg Ensembles

Fuente: arXiv
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Main Authors: Xue, Yunlong, Bai, Zhengyang
Format: Preprint
Published: 2025
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author Xue, Yunlong
Bai, Zhengyang
author_facet Xue, Yunlong
Bai, Zhengyang
contents Optical non-reciprocity is a fundamental phenomenon in photonics. It is crucial for developing devices that rely on directional signal control, such as optical isolators and circulators. However, most research in this field has focused on systems in equilibrium or steady states. In this work, we demonstrate a room-temperature Rydberg atomic platform where the unidirectional propagation of light acts as a switch to mediate time-crystalline-like collective oscillations through atomic synchronization. We find that thermal-motion-induced coupling asymmetry, enabled by counterpropagating probe and control fields, generates persistent oscillations; conversely, co-propagation quenches this effect. We identify, through both numerical and analytical approaches, the criteria for realizing optical non-reciprocity within a synchronization regime. These results provide key insights for chiral quantum optics and promote the on-chip integration of non-reciprocal devices in nonequilibrium many-body systems.
format Preprint
id arxiv_https___arxiv_org_abs_2510_03024
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Non-reciprocal Synchronization in Thermal Rydberg Ensembles
Xue, Yunlong
Bai, Zhengyang
Quantum Physics
Atomic Physics
Optical non-reciprocity is a fundamental phenomenon in photonics. It is crucial for developing devices that rely on directional signal control, such as optical isolators and circulators. However, most research in this field has focused on systems in equilibrium or steady states. In this work, we demonstrate a room-temperature Rydberg atomic platform where the unidirectional propagation of light acts as a switch to mediate time-crystalline-like collective oscillations through atomic synchronization. We find that thermal-motion-induced coupling asymmetry, enabled by counterpropagating probe and control fields, generates persistent oscillations; conversely, co-propagation quenches this effect. We identify, through both numerical and analytical approaches, the criteria for realizing optical non-reciprocity within a synchronization regime. These results provide key insights for chiral quantum optics and promote the on-chip integration of non-reciprocal devices in nonequilibrium many-body systems.
title Non-reciprocal Synchronization in Thermal Rydberg Ensembles
topic Quantum Physics
Atomic Physics
url https://arxiv.org/abs/2510.03024