Cavity-Induced Optical Nonreciprocity Based on Degenerate Two-Level Atoms

Nanomaterials Pub Date : 2024-07-23 DOI:10.3390/nano14151236
Chuan-Zhao Qi, Jia-Rui Zheng, Yuan-Hang Tong, Ruo-Nan Li, Dan Wang, Liang-Hui Huang, Hai-Tao Zhou
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Abstract

We developed and experimentally realized a scheme of optical nonreciprocity (ONR) by using degenerate two-level atoms embedded in an optical ring cavity. For the degenerate transition Fg = 4 ↔ Fe = 3, we first studied the cavity-transmission property in different coupling field configurations and verified that under the strong-coupling regime, the single-dark-state peak formed by electromagnetically induced transparency (EIT) showed ONR. The stable ground-state Zeeman coherence for Λ-chains involved in the degenerate two-level system was found to be important in the formation of intracavity EIT. However, different from the three-level atom–cavity system, in the degenerate two-level system, the ONR effect based on intracavity EIT occurred only at a low probe intensity, because the cavity–atom coupling strength was weakened in the counter-propagating probe and coupling field configuration. Furthermore, ONR transmission with a high contrast and linewidth-narrowing was experimentally demonstrated.
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基于退化两级原子的腔诱导光学非互易性
我们开发并在实验中实现了一种利用嵌入光环腔的退化两级原子的光学非互易性(ONR)方案。对于Fg = 4 ↔ Fe = 3的退化转变,我们首先研究了不同耦合场配置下的空腔透射特性,并验证了在强耦合机制下,电磁诱导透明(EIT)形成的单暗态峰表现出ONR。研究发现,在腔内 EIT 的形成过程中,参与退化两级体系的Λ链的稳定基态泽曼相干性非常重要。然而,与三电平原子-空穴系统不同,在退化的两电平系统中,基于腔内 EIT 的 ONR 效应只发生在低探针强度下,因为在反向传播的探针和耦合场配置中,空穴-原子耦合强度被削弱了。此外,实验还证明了高对比度和线宽收窄的 ONR 传输。
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