论文标题
通过光学诱导的磁化强度的无噪声光子非转录
Noiseless photonic non-reciprocity via optically-induced magnetization
论文作者
论文摘要
光学非循环性的实现对于许多设备应用至关重要,对于用所需的时间反转对称性操纵和保护光子也至关重要。最近,已经提出并实施了各种无磁非磁性磁性的新机制,避免了法拉第效应施加的强磁场的局限性。但是,由于抑制驱动器及其引起的噪声的困难,这些设备表现出有限的隔离性能,并且很少研究量子噪声性能。在这里,我们通过在原子合奏中光学诱导的磁化来展示了一种新的无磁非磁性方法。在7个数量级的功率动力范围内观察到信号的极佳隔离(最高分离率为51.4 dB),并通过量子统计测量验证了无噪声属性。该方法适用于固体中的其他原子和类似原子的发射器,为对综合光子非转录器件的未来研究铺平了道路,单向量子存储和状态转移以及拓扑光子技术。
The realization of optical non-reciprocity is crucial for many device applications, and also of fundamental importance for manipulating and protecting the photons with desired time-reversal symmetry. Recently, various new mechanisms of magnetic-free non-reciprocity have been proposed and implemented, avoiding the limitation of the strong magnetic field imposed by the Faraday effect. However, due to the difficulties in suppressing the drive and its induced noises, these devices exhibit limited isolation performances and leave the quantum noise properties rarely studied. Here, we demonstrate a new approach of magnetic-free non-reciprocity by optically induced magnetization in an atom ensemble. Excellent isolation of signal (highest isolation ratio is 51.4 dB) is observed over a power dynamic range of 7 orders of magnitude, with the noiseless property verified by quantum statistics measurement. The approach is applicable to other atoms and atom-like emitters in solids, paving the way for future studies of integrated photonic non-reciprocal devices, unidirectional quantum storage and state transfer, as well as topological photonics technologies.