Lu Yuwei, Zhao Yanhui, Li Runhua, Liu Jingfeng
Opt Express. 2022 Nov 7;30(23):41784-41803. doi: 10.1364/OE.473824.
An open quantum system operated at the spectral singularities where dimensionality reduces, known as exceptional points (EPs), demonstrates distinguishing behavior from the Hermitian counterpart. Here, we present an analytical description of local density of states (LDOS) for microcavity featuring chiral EPs, and unveil the anomalous spontaneous emission dynamics from a quantum emitter (QE) due to the non-Lorentzian response of EPs. Specifically, we reveal that a squared Lorentzian term of LDOS contributed by chiral EPs can destructively interfere with the linear Lorentzian profile, resulting in the null Purcell enhancement to a QE with special transition frequency, which we call EP induced transparency. While for the case of constructive interference, the squared Lorentzian term can narrow the linewidth of Rabi splitting even below that of bare components, and thus significantly suppresses the decay of Rabi oscillation. Interestingly, we further find that an open microcavity with chiral EPs supports atom-photon bound states for population trapping and decay suppression in long-time dynamics. As applications, we demonstrate the advantages of microcavity operated at chiral EPs in achieving high-fidelity entanglement generation and high-efficiency single-photon generation. Our work unveils the exotic cavity quantum electrodynamics unique to chiral EPs, which opens the door for controlling light-matter interaction at the quantum level through non-Hermiticity, and holds great potential in building high-performance quantum-optics devices.
一个在维度降低的光谱奇点(即例外点,EPs)处运行的开放量子系统,表现出与厄米特对应物不同的行为。在这里,我们给出了具有手性例外点的微腔的局域态密度(LDOS)的解析描述,并揭示了由于例外点的非洛伦兹响应,量子发射体(QE)的异常自发发射动力学。具体而言,我们发现手性例外点贡献的LDOS的平方洛伦兹项可以与线性洛伦兹分布发生相消干涉,导致具有特殊跃迁频率的量子发射体的珀塞尔增强为零,我们将其称为例外点诱导透明。而在相长干涉的情况下,平方洛伦兹项可以使拉比分裂的线宽变窄,甚至窄于裸分量的线宽,从而显著抑制拉比振荡的衰减。有趣的是,我们进一步发现具有手性例外点的开放微腔支持原子 - 光子束缚态,用于长时间动力学中的布居俘获和衰减抑制。作为应用,我们展示了在手性例外点处运行的微腔在实现高保真纠缠生成和高效单光子生成方面的优势。我们的工作揭示了手性例外点独特的奇异腔量子电动力学,这为通过非厄米性在量子水平上控制光与物质的相互作用打开了大门,并在构建高性能量子光学器件方面具有巨大潜力。