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Strongly Correlated Photon Transport in Waveguide Quantum Electrodynamics with Weakly Coupled Emitters

机译:弱耦合发射极在波导量子电动力学中的强相关光子传输

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We show that strongly correlated photon transport can be observed in waveguides containing optically dense ensembles of emitters. Remarkably, this occurs even for weak coupling efficiencies. Specifically, we compute the photon transport properties through a chirally coupled system of N two-level systems driven by a weak coherent field, where each emitter can also scatter photons out of the waveguide. The photon correlations arise due to an interplay of nonlinearity and coupling to a loss reservoir, which creates a strong effective interaction between transmitted photons. The highly correlated photon states are less susceptible to losses than uncorrelated photons and have a power-law decay with N. This is described using a simple universal asymptotic solution governed by a single scaling parameter which describes photon bunching and power transmission. We show numerically that, for randomly placed emitters, these results hold even in systems without chirality. The effect can be observed in existing tapered fiber setups with trapped atoms.
机译:我们表明,可以在包含发射器的光致密集成体的波导中观察到强相关的光子传输。值得注意的是,即使对于较弱的耦合效率,也会发生这种情况。具体来说,我们通过由弱相干场驱动的N个两级系统的手征耦合系统计算光子传输特性,其中每个发射器也可以将光子散射出波导。光子相关性的产生是由于非线性的相互作用以及耦合到损耗库,从而在透射光子之间产生了强大的有效相互作用。与不相关的光子相比,高度相关的光子状态不易受到损耗的影响,并且具有N的幂律衰减。这是使用受单个缩放参数控制的简单通用渐近解来描述的,该解描述了光子聚集和功率传输。我们通过数字显示,对于随机放置的发射器,即使在没有手性的系统中,这些结果也成立。可以在现有的带有捕获原子的锥形光纤设置中观察到这种效果。

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  • 来源
    《Physical review letters》 |2018年第14期|143601.1-143601.6|共6页
  • 作者单位

    Leibniz Univ Hannover, Inst Theoret Phys, Inst Gravitat Phys, Albert Einstein Inst, Appelstr 2, D-30167 Hannover, Germany;

    Univ Copenhagen, Niels Bohr Inst, Ctr Hybrid Quantum Networks Hy Q, Blegdamsvej 17, DK-2100 Copenhagen, Denmark;

    Univ Copenhagen, Niels Bohr Inst, Ctr Hybrid Quantum Networks Hy Q, Blegdamsvej 17, DK-2100 Copenhagen, Denmark;

    Univ Copenhagen, Niels Bohr Inst, Ctr Hybrid Quantum Networks Hy Q, Blegdamsvej 17, DK-2100 Copenhagen, Denmark;

    Leibniz Univ Hannover, Inst Theoret Phys, Inst Gravitat Phys, Albert Einstein Inst, Appelstr 2, D-30167 Hannover, Germany;

    Univ Copenhagen, Niels Bohr Inst, Ctr Hybrid Quantum Networks Hy Q, Blegdamsvej 17, DK-2100 Copenhagen, Denmark;

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