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首页> 外文期刊>Physica, A. Statistical mechanics and its applications >Influence of Stark-shift on quantum coherence and non-classical correlations for two two-level atoms interacting with a single-mode cavity field
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Influence of Stark-shift on quantum coherence and non-classical correlations for two two-level atoms interacting with a single-mode cavity field

机译:两种两级原子与单模腔场相互作用的量子相干性与非经典相关性的影响

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摘要

An exact analytic solution for two two-level atoms coupled with a multi-photon single-mode electromagnetic cavity field in the presence of the Stark shift is derived. We assume that the field is initially prepared in a coherent state and the two atoms are initially prepared in excited state. Considering the atomic level shifts generated by the Stark shift effect, the dynamical behavior of both quantum coherence (QC) measured using a quantum Jensen-Shannon divergence and of quantum correlations captured by quantum discord (QD) are investigated. It is shown that the intensity-dependent Stark-shift in the cavity and the number of coherent state photons plays a key role in enhancing or destroying both QC and QD during the process of intrinsic decoherence. We remarked that increasing the Stark-shift parameters, the frequencies of the transition for the mode of the cavity field, and photons number destroy both the amount of QC and QD and affected their periodicity. More importantly, QC and QD exhibit similar behavior and both show a revival phenomenon. We believe that the present work shows that the quantum information protocols based on physical resources in optical systems could be controlled by adjusting the Stark-shift parameters. (C) 2020 Elsevier B.V. All rights reserved.
机译:推导出在存在于STARK换档的情况下与多光子单模电磁腔场耦合的两个两级原子的精确分析解决方案。我们假设最初以相干状态制备该领域,并且最初以激发状态制备两个原子。考虑到STARK换档效应产生的原子水平偏移,研究了使用量子jensen-shannon发散和量子不和谐(qd)捕获的量子相关测量的量子相干性(qc)的动态行为。结果表明,腔体中的强度依赖性滞留率和相干状态光子的数量在增强或破坏内在的堵塞过程中在增强或破坏QC和QD中起着关键作用。我们备注的是,增加腔换档参数,腔场模式的过渡的频率,以及光子编号破坏了QC和QD的量并影响了它们的周期性。更重要的是,QC和QD表现出类似的行为,两者都表现出复兴现象。我们认为,本作者表明,通过调整STARK移位参数,可以控制基于光学系统中物理资源的量子信息协议。 (c)2020 Elsevier B.v.保留所有权利。

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