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Quantum Dynamics of a Few-Photon Parametric Oscillator

机译:几光子参数振荡器的量子动态

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Modulating the frequency of a harmonic oscillator at nearly twice its natural frequency leads to amplification and self-oscillation. Above the oscillation threshold and in the presence of a nonlinearity, the field settles into a coherent oscillating state with a well-defined phase of either 0 or π . We demonstrate a quantum parametric oscillator operating at microwave frequencies and drive it into oscillating states containing only a few photons. The small number of photons present in the system and the coherent nature of the nonlinearity prevent the environment from learning the randomly chosen phase of the oscillator. This result allows the system to oscillate briefly in a quantum superposition of both phases at once, effectively generating a nonclassical Schr?dinger’s cat state. We characterize the dynamics and states of the system by analyzing the output field emitted by the oscillator and implementing quantum state tomography suited for nonlinear resonators. By demonstrating a quantum parametric oscillator and the requisite techniques for characterizing its quantum state, we set the groundwork for new schemes of quantum and classical information processing and extend the reach of these ubiquitous devices deep into the quantum regime.
机译:在其自固定频率的几倍以近两倍调制谐振子的频率导致放大和自振荡。在振荡阈值之上并且在存在非线性的情况下,该场在具有0或π的明确阶段的相干振荡状态下落入相干振荡状态。我们展示了在微波频率下操作的量子参数振荡器,并将其驱动成仅包含几个光子的振荡状态。在系统中存在的少量光子和非线性的相干性质可以防止环境学习振荡器的随机选择的相位。该结果允许系统立即在两个阶段的量子叠加中短暂地振荡,有效地产生非分类SCHR?Dinger的猫状态。通过分析振荡器发射的输出场和适用于非线性谐振器的量子区断层扫描来表征系统的动态和状态。通过演示量子参数振荡器和表征其量子状态的必要技术,我们为量子和经典信息处理的新方案设定了基础,并将这些普遍存在的设备深入延伸到量子状态。

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