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Trapping of single atoms with single photons in cavity QED

机译:腔QED中单原子与单光子的陷阱

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摘要

Two recent experiments have reported the trapping of individual atoms inside optical resonators by the mechanical forces associated with single photons [Hood et al., Science 287, 1447 (2000), Pinkse et al., Nature (London) 404, 365 (2000)]. Here we analyze the trapping dynamics in these settings, focusing on two points of interest. First, we investigate the extent to which light-induced forces in these experiments are distinct from their free-space counterparts, and whether or not there are qualitatively different effects of optical forces at the single-photon level within the setting of cavity QED. Second, we explore the quantitative features of the resulting atomic motion, and how these dynamics are mapped onto experimentally observable variations of the intracavity field. Toward these ends, we present results from extensive numerical simulations of the relevant forces and their fluctuations, as well as a detailed derivation of our numerical simulation method, based on the full quantum-mechanical master equation. Not surprisingly, qualitatively distinct atomic dynamics arise as the coupling and dissipative rates are varied. For the experiment of Hood et al., we show that atomic motion is largely conservative and is predominantly in radial orbits transverse to the cavity axis. A comparison with the free-space theory demonstrates that the fluctuations of the dipole force are suppressed by an order of magnitude. This effect is based upon the Jaynes-Cummings eigenstates of the atom-cavity system and represents distinct physics for optical forces at the single-photon level within the context of cavity QED. By contrast, even in a regime of strong coupling in the experiment of Pinkse et al., there are only small quantitative distinctions between the potentials and heating rates in the free-space theory and the quantum theory, so it is not clear that a description of this experiment as a novel single-quantum trapping effect is necessary. The atomic motion is strongly diffusive, leading to an average localization time comparable to the time for an atom to transit freely through the cavity, and to a reduction in the ability to infer aspects of the atomic motion from the intracavity photon number.
机译:最近的两个实验报道了与单光子相关的机械力将单个原子捕获在光学谐振器中[Hood等人,Science 287,1447(2000),Pinkse等人,Nature(London)404,365(2000)。 ]。在这里,我们重点分析两个兴趣点,分析这些设置中的诱捕动力学。首先,我们研究了这些实验中光诱导力与自由空间对应物的区别程度,以及在腔QED设置下单光子水平上的光力在质上是否存在质的不同。其次,我们探讨了原子运动的定量特征,以及如何将这些动力学映射到腔内场的实验可观察变化中。为此,我们介绍了有关力及其波动的大量数值模拟结果,以及基于完整的量子力学主方程对数值模拟方法的详细推导。毫不奇怪,随着耦合和耗散率的变化,质的区别原子动力学出现。对于Hood等人的实验,我们表明原子运动在很大程度上是保守的,并且主要在横向于腔轴的径向轨道上进行。与自由空间理论的比较表明,偶极力的波动被抑制了一个数量级。该效应基于原子腔系统的Jaynes-Cummings本征态,并且在腔QED范围内代表了单光子级光学力的不同物理性质。相比之下,即使在Pinkse等人的实验中,在强耦合的情况下,在自由空间理论和量子理论中,电势和升温速率之间也只有很小的定量区别,因此不清楚该描述该实验作为一种新颖的单量子阱效应是必要的。原子运动具有很强的扩散性,导致平均定位时间与原子自由通过腔体的时间相当,并且降低了从腔内光子数推断原子运动各个方面的能力。

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