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Spontaneous emission of Schr?dinger cats in a waveguide at ultrastrong coupling

机译:超强耦合下波导中薛定er猫的自发发射

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Josephson circuits provide a realistic physical setup where the light–matter fine structure constant can become of order one, allowing to reach a regime dominated by non-perturbative effects beyond standard quantum optics. Simple processes, such as spontaneous emission, thus acquire a many-body character, that can be tackled using a new description of the time-dependent state vector in terms of quantum-superposed coherent states. We find that spontaneous atomic decay at ultrastrong coupling leads to the emission of spectrally broad Schr?dinger cats rather than of monochromatic single photons. These cats states remain partially entangled with the emitter at intermediate stages of the dynamics, even after emission, due to a large separation in time scales between fast energy relaxation and exponentially slow decoherence. Once decoherence of the qubit is finally established, quantum information is completely transfered to the state of the emitted cat.
机译:约瑟夫森电路提供了一种现实的物理设置,其中光-物质的精细结构常数可以变为一阶,从而可以达到由标准量子光学以外的非扰动效应主导的状态。因此,简单的过程(例如自发发射)具有多体特征,可以使用依赖于时间的状态向量的新描述(以量子叠加相干态表示)来解决该问题。我们发现超强耦合下的自发原子衰变会导致光谱宽的薛定er猫的发射,而不是单色单光子的发射。这些猫的状态在动力学的中间阶段,即使在发射之后,也仍然部分与发射器纠缠,这是由于快速能量弛豫和指数缓慢的退相干之间在时间尺度上有很大的距离。一旦最终建立了量子比特的退相干,量子信息就会完全转移到发射猫的状态。

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