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晶体中电信波长纠缠光子的量子存储

Quantum storage of entangled photons at telecom wavelengths in a crystal.

作者信息

Jiang Ming-Hao, Xue Wenyi, He Qian, An Yu-Yang, Zheng Xiaodong, Xu Wen-Jie, Xie Yu-Bo, Lu Yanqing, Zhu Shining, Ma Xiao-Song

机构信息

National Laboratory of Solid-state Microstructures, School of Physics, College of Engineering and Applied Sciences, Collaborative Innovation Center of Advanced Microstructures, Nanjing University, 210093, Nanjing, China.

Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China, 230026, Hefei, Anhui, China.

出版信息

Nat Commun. 2023 Nov 1;14(1):6995. doi: 10.1038/s41467-023-42741-1.

Abstract

Quantum storage and distribution of entanglement are the key ingredients for realizing a global quantum internet. Compatible with existing fiber networks, telecom-wavelength entangled photons and corresponding quantum memories are of central interest. Recently, Er ions have been identified as a promising candidate for an efficient telecom quantum memory. However, to date, no storage of entangled photons, the crucial step of quantum memory using these promising ions, Er, has been reported. Here, we demonstrate the storage and retrieval of the entangled state of two telecom photons generated from an integrated photonic chip. Combining the natural narrow linewidth of the entangled photons and long storage time of Er ions, we achieve storage time of 1.936 μs, more than 387 times longer than in previous works. Successful storage of entanglement in the crystal is certified using entanglement witness measurements. These results pave the way for realizing quantum networks based on solid-state devices.

摘要

量子纠缠的存储与分发是实现全球量子互联网的关键要素。与现有光纤网络兼容的电信波长纠缠光子及相应的量子存储器备受关注。近来,铒离子已被认定为高效电信量子存储器的一个有前景的候选者。然而,迄今为止,尚未有使用这些有前景的铒离子进行量子存储器关键步骤——纠缠光子存储的相关报道。在此,我们展示了从集成光子芯片产生的两个电信光子纠缠态的存储与检索。结合纠缠光子的自然窄线宽和铒离子的长存储时间,我们实现了1.936微秒的存储时间,比之前的工作长387倍以上。通过纠缠见证测量验证了晶体中纠缠的成功存储。这些结果为基于固态器件的量子网络的实现铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4dc/10620411/9d708d79c872/41467_2023_42741_Fig1_HTML.jpg

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