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Quantum interference on the transmission spectrum of a timed Dicke state in an open cavity

机译:普通干扰对开腔中定时DICKE状态的传输光谱

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The transmission spectrum of a two-atom timed Dicke state is investigated in an open optical cavity. In the proposed system, two identical atoms are excited by an external single photon field. In this process, the excited atoms grasp different excitation phases for their different spatial positions. For identical coupling strength of atoms and cavity, the excitation phases get coupled via cavity and vacuum fields, and they finally induce cosine-type quantum interference on the two splitting peaks of the spectrum. However, when one of the atoms is decoupled with the cavity, the excitation phases cannot get coupled directly via the cavity but must be mediated by the vacuum fields, which leads to opposite quantum interference effects on the two splitting peaks. In addition, we find that the real and virtual vacuum-mediated excitation phase couplings generate different quantum interferences. The real vacuum-meditated coupling induces sine-type quantum interference, while it becomes cosine-type for the virtual vacuum-mediated coupling. Our study clarifies the mechanism of quantum interference in the two-atom timed Dicke state and provides a feasible scheme for investigating the effect of vacuum-mediated excitation phase coupling. (C) 2021 Optical Society of America
机译:研究了开放光腔中两原子定时狄克态的透射光谱。在该系统中,两个相同的原子被外部单光子场激发。在这个过程中,受激原子因其不同的空间位置而掌握不同的激发相位。当原子和腔的耦合强度相同时,激发相通过腔场和真空场耦合,最终在光谱的两个分裂峰上产生余弦型量子干涉。然而,当其中一个原子与腔去耦时,激发相不能通过腔直接耦合,而必须由真空场介导,这导致两个分裂峰上的量子干涉效应相反。此外,我们还发现,真实和虚拟真空介导的激发相位耦合会产生不同的量子干涉。真正的真空感应耦合会产生正弦型量子干涉,而虚拟真空感应耦合会产生余弦型量子干涉。我们的研究阐明了双原子计时Dicke态的量子干涉机制,为研究真空介导的激发-相位耦合效应提供了一个可行的方案。(2021)美国光学学会

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