Hu Xin-Xin, Wang Zhu-Bo, Zhang Pengfei, Chen Guang-Jie, Zhang Yan-Lei, Li Gang, Zou Xu-Bo, Zhang Tiancai, Tang Hong X, Dong Chun-Hua, Guo Guang-Can, Zou Chang-Ling
CAS Key Laboratory of Quantum Information & CAS Center For Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, P. R. China.
State Key Laboratory of Quantum Optics and Quantum Optics Devices, and Institute of Opto-Electronics, Shanxi University, Taiyuan, P. R. China.
Nat Commun. 2021 Apr 22;12(1):2389. doi: 10.1038/s41467-021-22597-z.
The realization of optical non-reciprocity is crucial for many 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 separating the signal photons from the drive laser and the noise photons induced by the drive laser, these devices exhibit limited isolation performances and their quantum noise properties are rarely studied. Here, we demonstrate an approach of magnetic-free non-reciprocity by optically-induced magnetization in an atom ensemble. Excellent isolation (highest isolation ratio is [Formula: see text]) is observed over a power dynamic range of 7 orders of magnitude, with the noiseless property verified by quantum statistics measurements. The approach is applicable to other atoms and atom-like emitters, paving the way for future studies of integrated photonic non-reciprocal devices.
光学非互易性的实现对许多应用至关重要,对于操控和保护具有所需时间反演对称性的光子也具有根本重要性。最近,人们提出并实现了各种无磁非互易性的新机制,避免了法拉第效应所施加的强磁场的限制。然而,由于难以将信号光子与驱动激光以及由驱动激光诱导产生的噪声光子分离,这些器件表现出有限的隔离性能,并且其量子噪声特性很少被研究。在此,我们展示了一种通过原子系综中的光致磁化实现无磁非互易性的方法。在7个数量级的功率动态范围内观察到了优异的隔离(最高隔离比为[公式:见原文]),并且通过量子统计测量验证了其无噪声特性。该方法适用于其他原子和类原子发射体,为未来集成光子非互易器件的研究铺平了道路。