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首页> 外文期刊>Physical Review, A >Catastrophic breakdown of the Caves model for quantum noise in some phase-insensitive linear amplifiers or attenuators based on atomic systems
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Catastrophic breakdown of the Caves model for quantum noise in some phase-insensitive linear amplifiers or attenuators based on atomic systems

机译:在基于原子系统的某些对相位不敏感的线性放大器或衰减器中,Caves模型的量子噪声发生灾难性分解

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When considering the effect of quantum noise (QN) in a phase-insensitive linear amplifier or attenuator, it is customary to use the single-channel Caves model (SC-CM). Although this model is valid in simple situations, such as the presence of a beam splitter, it is not necessarily valid when a system with many degrees of freedom is involved. In order to address this issue, we consider in this paper various atomic transitions corresponding to amplification or attenuation using the master-equation-(ME-) based approach to model the QN and to compare the results with the SC-CM. For a four-level system that consists of a transition producing a broad gain peak and a transition producing an absorption dip, which results in perfect transparency at the center, we observe a catastrophic breakdown of the SC-CM. We also show that for a general two-level atomic system, the SC-CM does not apply, except in the limiting case when only either amplification or attenuation exists. A special case where the two models predict the same result is a Lambda-type three-level electromagnetically induced transparency (EIT) system in which the QN at zero detuning vanishes while the system is in the dark state. We also study an optically pumped five-level gain EIT system which has a perfect transparency dip superimposed on a gain profile and yields the negative dispersion suitable for use in enhancing the sensitivity-bandwidth product of an interferometric gravitational wave detector. In this case, we find that, for some set of parameters, the QN is vanishingly small at the center of the dip, and the SC-CM agrees closely with the ME model. However, we also find that for some other set of parameters, the SC-SM model disagrees strongly with the ME model. All these cases illustrate a wide range of variations in the degree of disagreement between the predictions of the SC-CM and the ME approaches.
机译:考虑相位不敏感的线性放大器或衰减器中的量子噪声(QN)的影响时,通常使用单通道Caves模型(SC-CM)。尽管此模型在简单的情况下(例如,存在分束器)有效,但在涉及具有许多自由度的系统时,不一定有效。为了解决这个问题,我们在本文中考虑使用基于主方程(ME)的方法对与放大或衰减相对应的各种原子跃迁建模QN并将结果与​​SC-CM进行比较。对于由产生宽增益峰的跃迁和产生吸收谷的跃迁组成的四级系统,该跃迁产生中心的完美透明度,我们观察到SC-CM发生灾难性故障。我们还表明,对于一般的两级原子系统,SC-CM不适用,除非在仅存在放大或衰减的情况下才适用。两种模型预测结果相同的特殊情况是Lambda型三级电磁感应透明(EIT)系统,其中零失谐的QN在系统处于黑暗状态时消失。我们还研究了光泵浦的五级增益EIT系统,该系统具有叠加在增益曲线上的理想透明度下陷并产生负色散,适用于增强干涉重力波检测器的灵敏度带宽乘积。在这种情况下,我们发现,对于某些参数集,QN在倾角的中心逐渐消失,并且SC-CM与ME模型非常吻合。但是,我们还发现,对于其他一些参数集,SC-SM模型与ME模型强烈不同。所有这些情况说明了SC-CM和ME方法的预测之间的分歧程度存在很大差异。

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