论文标题
挤压的Kerr振荡器:频谱接吻和相flip稳定性
The squeezed Kerr oscillator: spectral kissing and phase-flip robustness
论文作者
论文摘要
通过将微波驱动器应用于特殊设计的约瑟夫森电路,我们已经意识到了基本的量子光学模型,即挤压的Kerr振荡器。该模型显示,随着挤压幅度的增加,从单个基态状态到双层基态状态状态的交叉。在后一种情况下,基态歧管由Schrödinger-cat状态,即具有相反相的相干状态的量子叠加。在光谱实验中,我们第一次解决了第十个激发态后,我们确认提出的新兴静态有效的汉密尔顿式汉密尔顿人尽管具有驱动性,但仍正确地描述了该系统。我们还发现,随着挤压幅度的函数,猫状态的相干状态成分的寿命增加。我们将楼梯图案解释为在激发态谱中成对级别的接吻导致的楼梯图案。考虑到该基态歧管中编码的Kerr-cat量子量表,我们首次实现了大于99%的量子非态度读数保真度,并增强了相折叠寿命的数量级以上,同时保留了通用量子控制。我们的实验说明了参数驱动哈密顿工程对硬件有效量子计算的关键作用。
By applying a microwave drive to a specially designed Josephson circuit, we have realized an elementary quantum optics model, the squeezed Kerr oscillator. This model displays, as the squeezing amplitude is increased, a cross-over from a single ground state regime to a doubly-degenerate ground state regime. In the latter case, the ground state manifold is spanned by Schrödinger-cat states, i.e. quantum superpositions of coherent states with opposite phases. For the first time, having resolved up to the tenth excited state in a spectroscopic experiment, we confirm that the proposed emergent static effective Hamiltonian correctly describes the system, despite its driven character. We also find that the lifetime of the coherent state components of the cat states increases in steps as a function of the squeezing amplitude. We interpret the staircase pattern as resulting from pairwise level kissing in the excited state spectrum. Considering the Kerr-cat qubit encoded in this ground state manifold, we achieve for the first time quantum nondemolition readout fidelities greater than 99%, and enhancement of the phase-flip lifetime by more than two orders of magnitude, while retaining universal quantum control. Our experiment illustrates the crucial role of parametric drive Hamiltonian engineering for hardware-efficient quantum computation.