Quantum-memory-assisted on-demand microwave-optical transduction

Fuente: arXiv
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Hauptverfasser: Tu, Hai-Tao, Liao, Kai-Yu, Qiu, Si-Yuan, Liu, Xiao-Hong, Guo, Yi-Qi, Du, Zheng-Qi, Xu, Yang, Zhang, Xin-Ding, Yan, Hui, Zhu, Shi-Liang
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Veröffentlicht: 2025
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author Tu, Hai-Tao
Liao, Kai-Yu
Qiu, Si-Yuan
Liu, Xiao-Hong
Guo, Yi-Qi
Du, Zheng-Qi
Xu, Yang
Zhang, Xin-Ding
Yan, Hui
Zhu, Shi-Liang
author_facet Tu, Hai-Tao
Liao, Kai-Yu
Qiu, Si-Yuan
Liu, Xiao-Hong
Guo, Yi-Qi
Du, Zheng-Qi
Xu, Yang
Zhang, Xin-Ding
Yan, Hui
Zhu, Shi-Liang
contents Microwave-optical transducers and quantum memories are fundamental components of quantum repeaters, essential for developing a quantum internet in which solid-state quantum computers serve as nodes interconnected by optical fibers for data transmission. Although both technologies have made significant advancements, the integration of microwave-optical conversion and quantum memory functionalities remains a challenge. Here, we theoretically propose and experimentally demonstrate a memoryenhanced quantum microwave-optical transduction using a Rydberg ensemble. By utilizing a cascaded electromagnetically induced transparency process, we store microwave photons in a highly excited collective state and subsequently convert them into optical photons during the retrieval process. Taking advantage of the optical depth with order of millions for microwave photons in Rydberg ensemble, combined with a minimal storage dephasing rate at the single-photon level, the transducer achieves an areanormalized storage efficiency greater than 90%, a bandwidth of 2.1 MHz, and a noise equivalent temperature as low as 26 K, even in cavity-free conditions. Our findings pave the way for the practical implementation of quantum repeaters based on atomic ensembles in quantum information processing.
format Preprint
id arxiv_https___arxiv_org_abs_2509_18834
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum-memory-assisted on-demand microwave-optical transduction
Tu, Hai-Tao
Liao, Kai-Yu
Qiu, Si-Yuan
Liu, Xiao-Hong
Guo, Yi-Qi
Du, Zheng-Qi
Xu, Yang
Zhang, Xin-Ding
Yan, Hui
Zhu, Shi-Liang
Quantum Physics
Atomic Physics
Optics
Microwave-optical transducers and quantum memories are fundamental components of quantum repeaters, essential for developing a quantum internet in which solid-state quantum computers serve as nodes interconnected by optical fibers for data transmission. Although both technologies have made significant advancements, the integration of microwave-optical conversion and quantum memory functionalities remains a challenge. Here, we theoretically propose and experimentally demonstrate a memoryenhanced quantum microwave-optical transduction using a Rydberg ensemble. By utilizing a cascaded electromagnetically induced transparency process, we store microwave photons in a highly excited collective state and subsequently convert them into optical photons during the retrieval process. Taking advantage of the optical depth with order of millions for microwave photons in Rydberg ensemble, combined with a minimal storage dephasing rate at the single-photon level, the transducer achieves an areanormalized storage efficiency greater than 90%, a bandwidth of 2.1 MHz, and a noise equivalent temperature as low as 26 K, even in cavity-free conditions. Our findings pave the way for the practical implementation of quantum repeaters based on atomic ensembles in quantum information processing.
title Quantum-memory-assisted on-demand microwave-optical transduction
topic Quantum Physics
Atomic Physics
Optics
url https://arxiv.org/abs/2509.18834