论文标题

自我诱导的光学非转录

Self-induced optical non-reciprocity

论文作者

Wang, Zhu-Bo, Zhang, Yan-Lei, Hu, Xin-Xin, Chen, Guang-Jie, Li, Ming, Yang, Peng-Fei, Zou, Xu-Bo, Zhang, Peng-Fei, Dong, Chun-Hua, Li, Gang, Zhang, Tian-Cai, Guo, Guang-Can, Zou, Chang-Ling

论文摘要

在光学应用中,非转录光学组件是必不可少的,并且它们没有任何磁场的实现会导致光子学的研究兴趣增加。通过引入光学介质的时空调制或将KERR型光学非线性与光子结构中的空间不对称结合在一起,可以实现令人兴奋的实验进步。但是,第一种方法需要额外的驾驶场,而对于另一种方法,噪声的隔离和信号的传输无法同时实现。在这里,我们在实验上证明了光学介质非线性非逆向敏感性的新概念,并实现了没有任何外部偏置字段的光学信号的完全被动隔离。通过非常高的分离比为63.4 dB,用于60 dB分离的2.1 GHz的带宽和低插入损失约为1 dB,证明了输入信号的自诱导的分离。此外,还实现了新型功能性光学设备,包括极化纯化和非转录杠杆作用。所展示的非线性非股展是提供了一种多功能工具来控制光线并加深我们对光线相互作用的理解,并启用了从拓扑光子学到网络中的单向量子信息传输的应用程序。

Non-reciprocal optical components are indispensable in optical applications, and their realization without any magnetic field arose increasing research interests in photonics. Exciting experimental progress has been achieved by either introducing spatial-temporal modulation of the optical medium or combining Kerr-type optical nonlinearity with spatial asymmetry in photonic structures. However, extra driving fields are required for the first approach, while the isolation of noise and the transmission of the signal cannot be simultaneously achieved for the other approach. Here, we experimentally demonstrate a new concept of nonlinear non-reciprocal susceptibility for optical media and realize the completely passive isolation of optical signals without any external bias field. The self-induced isolation by the input signal is demonstrated with an extremely high isolation ratio of 63.4 dB, a bandwidth of 2.1 GHz for 60 dB isolation, and a low insertion loss of around 1 dB. Furthermore, novel functional optical devices are realized, including polarization purification and non-reciprocal leverage. The demonstrated nonlinear non-reciprocity provides a versatile tool to control light and deepen our understanding of light-matter interactions, and enables applications ranging from topological photonics to unidirectional quantum information transfer in a network.

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