论文标题
驱动传输中古典混乱的回忆
Reminiscence of classical chaos in driven transmons
论文作者
论文摘要
Transmon Qubits普遍存在用于超导量子信息处理器体系结构。需要强大的驱动器才能实现快速,高保真,大门和测量值,包括参数激活的过程。在这里,我们表明,即使在实验中通常使用的机制中,即使是抗谐振的驱动器也可能对跨月频谱的结构进行强烈的修改,从而使其中很大一部分混乱。考虑到Floquet-Markov形式主义中Transmon的完整非线性动力学,我们发现这些混乱的状态通常通过假设弱势性而忽略了,对Transmon计算状态的寿命会严重影响。特别是,我们观察到混沌辅助量子相的滑动极大地增强了带分散。在存在测量谐振器的情况下,我们发现接近混沌行为与强的转基因谐振杂交相关,而平均谐振器响应以裸共振频率为中心。这些结果导致光子数阈值表征了混乱诱导的量子拆除效应在强驱动器操作(例如分散量子器读数)期间的出现。预计此处描述的现象将基于低阻抗的约瑟夫森 - 界面存在于所有电路中。
Transmon qubits are ubiquitously used in superconducting quantum information processor architectures. Strong drives are required to realize fast, high-fidelity, gates and measurements, including parametrically activated processes. Here, we show that even off-resonant drives, in regimes routinely used in experiments, can cause strong modifications to the structure of the transmon spectrum rendering a large part of it chaotic. Accounting for the full nonlinear dynamics of the transmon in a Floquet-Markov formalism, we find that these chaotic states, often neglected through the hypothesis that the anharmonicity is weak, strongly impact the lifetime of the transmon's computational states. In particular, we observe that chaos-assisted quantum phase slips greatly enhance band dispersions. In the presence of a measurement resonator, we find that approaching chaotic behavior correlates with strong transmon-resonator hybridization, and an average resonator response centered on the bare resonator frequency. These results lead to a photon number threshold characterizing the appearance of chaos-induced quantum demolition effects during strong-drive operations such as dispersive qubit readout. The phenomena described here are expected to be present in all circuits based on low-impedance Josephson-junctions.