论文标题

单光子在室温下在室温下的高效量子记忆

Efficient, ever-ready quantum memory at room temperature for single photons

论文作者

Leung, Anthony C., Lau, W. Y. Sarah, Tranter, Aaron D., Paul, Karun V., Rambach, Markus, Buchler, Ben C., Lam, Ping Koy, White, Andrew G., Weinhold, Till J.

论文摘要

有效的量子记忆将是大规模网络量子系统的重要组成部分,并在飞行光子量子和原子或准原子局部量子处理器之间提供联系。为了提供避免笨重的可伸缩性的途径,必须难以维护高真空和低温低温的系统。需要超过50%的记忆效率才能在量子无关限制上运行。这种高效率仅在针对内存带宽量身定制的光子源的系统中实现。在本文中,我们探讨了从腔体增强自发参数下转化的单光子与气体增强原子记忆的组合。我们的Rubidium Vapor梯度回声内存达到84美元$ \ PM $ 3%的单个光子回忆效率:始终准备,热和真空系统的记录。

Efficient quantum memories will be an essential building block of large scale networked quantum systems and provide a link between flying photonic qubits and atomic or quasi-atomic local quantum processors. To provide a path to scalability avoidance of bulky, difficult to maintain systems such as high vacuum and low temperature cryogenics is imperative. Memory efficiencies above 50% are required to be operating above the quantum no-cloning limit. Such high efficiencies have only been achieved in systems with photon sources tailored to the memory bandwidth. In this paper we explore the combination of an ultralow spectral bandwidth source of single photons from cavity-enhanced spontaneous parametric down-conversion with a gas-ensemble atomic memory. Our rubidium vapour gradient echo memory achieves 84$\pm$3% recall efficiency of single photons: a record for an always-ready, hot, and vacuum system free optical memory.

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