Shui Tao, Yang Wen-Xing, Cheng Mu-Tian, Lee Ray-Kuang
Opt Express. 2022 Feb 14;30(4):6284-6299. doi: 10.1364/OE.446238.
A scheme for magnetic-free optical nonreciprocity in an ensemble of four-level cold atoms is proposed by exploiting the directional four-wave mixing effect. Using experimentally achievable parameters, the nonreciprocal optical responses of the system can be observed and the conversion on nonreciprocal transmission and nonreciprocal phase shift can be implemented. These nonreciprocal phenomena originate from the directional phase matching, which breaks the time-reversal symmetry and dynamic reciprocity of the cold atomic system. Moreover, by embedding the cold atoms into a Mach-Zehnder interferometer and choosing proper parameters, a two-port optical isolator with an isolation ratio of 79.70 dB and an insertion loss of 0.35 dB and a four-port optical circulator with a fidelity of 0.9985 and a photon survival probability of 0.9278 can be realized, which shows the high performance of isolation and circulation. The proposal may enable a new class of optically controllable cavity-free nonreciprocal devices in optical signal processing at the low light level.
通过利用定向四波混频效应,提出了一种在四能级冷原子系综中实现无磁光学非互易性的方案。利用实验可实现的参数,可以观察到系统的非互易光学响应,并实现非互易传输和非互易相移的转换。这些非互易现象源于定向相位匹配,它打破了冷原子系统的时间反演对称性和动态互易性。此外,通过将冷原子嵌入马赫-曾德尔干涉仪并选择合适的参数,可以实现隔离比为79.70 dB、插入损耗为0.35 dB的双端口光隔离器以及保真度为0.9985、光子存活概率为0.9278的四端口光环行器,这显示了其高性能的隔离和循环特性。该方案可能会在低光水平的光信号处理中实现一类新型的光学可控无腔非互易器件。