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All-optical reversible single-photon isolation at room temperature

机译:全光可逆的单光子隔离在室温下

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Nonreciprocal devices operating at the single-photon level are fundamental elements for quantum technologies. Because magneto-optical nonreciprocal devices are incompatible for magnetic-sensitive or on-chip quantum information processing, all-optical nonreciprocal isolation is highly desired, but its realization at the quantum level is yet to be accomplished at room temperature. Here, we propose and experimentally demonstrate two regimes, using electromagnetically induced transparency (EIT) or a Raman transition, for all-optical isolation with warm atoms. We achieve an isolation of 22.52 ± 0.10 dB and an insertion loss of about 1.95 dB for a genuine single photon, with bandwidth up to hundreds of megahertz. The Raman regime realized in the same experimental setup enables us to achieve high isolation and low insertion loss for coherent optical fields with reversed isolation direction. These realizations of single-photon isolation and coherent light isolation at room temperature are promising for simpler reconfiguration of high-speed classical and quantum information processing.
机译:在单光子电平工作的非透镜装置是量子技术的基本要素。因为磁光非探测器对磁敏或片上量子信息处理不兼容,因此非常需要全光非探测分离,但其在量子水平上的实现尚未在室温下完成。在这里,我们提出并通过实验证明了两个制度,使用电磁诱导的透明度(EIT)或拉曼转换,用于与温热原子的全光隔离。我们达到22.52±0.10 dB的隔离,对于真正的单色光子,可插入损耗约为1.95 dB,带宽高达数百Megahertz。在相同的实验设置中实现的拉曼制度使我们能够实现具有反向隔离方向的相干光场的高隔离和低插入损耗。在室温下的单光子隔离和相干光隔离的这些实现是有希望更简单的高速经典和量子信息处理的重新配置。

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