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Quantum Hall phases emerging from atom-photon interactions

机译:量子霍尔阶段从原子 - 光子相互作用中出现

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We reveal the emergence of quantum Hall phases, topological edge states, spectral Landau levels, and Hofstadter butterfly spectra in the two-particle Hilbert space of an array of periodically spaced two-level atoms coupled to a waveguide (waveguide quantum electrodynamics). While the topological edge states of photons require fine-tuned spatial or temporal modulations of the parameters to generate synthetic magnetic fields and the quantum Hall effect, here we demonstrate that a synthetic magnetic field can be self-induced solely by atom-photon interactions. The fact that topological order can be self-induced in what is arguably the simplest possible quantum structure shows the richness of these waveguide quantum electrodynamics systems. We believe that our findings will advance several research disciplines including quantum optics, many-body physics, and nonlinear topological photonics, and that it will set an important reference point for the future experiments on qubit arrays and quantum simulators.
机译:我们揭示了量子霍尔阶段,拓扑边缘状态,光谱斑块和HofStadter蝶形谱的出现在耦合到波导(波导量子电动电动动力学)的周期性间隔的两级原子阵列的双粒子Hilbert空间中。虽然光子的拓扑边缘状态需要对参数的微调空间或时间调制来产生合成磁场和量子霍尔效应,但在这里我们证明了合成磁场可以仅通过原子 - 光子相互作用自诱导。拓扑顺序可以自我诱导的事实是可以说是最简单的可能的量子结构显示出这些波导量子电动力系统的丰富性。我们认为,我们的调查结果将推进几个研究学科,包括量子光学,多体物理和非线性拓扑光子,并且它将为Qubit阵列和量子模拟器的未来实验设定一个重要的参考点。

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