论文标题

可重复性和控制超导速度量子

Reproducibility and control of superconducting flux qubits

论文作者

Chang, T., Holzman, I., Cohen, T., Johnson, B. C., Jamieson, D. N., Stern, M.

论文摘要

超导通量码头是可伸缩量子处理器的物理实现的有希望的候选者。实际上,这些电路可能具有很小的退积速率,也可能具有较大的非谐调性。这些属性可以使快速量子门具有高忠诚度,并降低由于频率拥挤而导致的缩放限制。通量Qubits设计的主要困难包括精确控制其过渡能量 - 所谓的量子差距 - 同时保持长时间且可重复的放松时间。解决此问题是具有挑战性的,需要极大地控制电子束光刻,连接的氧化参数和样品表面。在这里,我们介绍了大量通量Qubits的测量值,并证明了高度的可重复性和控制量子间隙,放松时间和纯回声倾向时间的控制。这些结果为量子混合电路和量子计算领域的潜在应用开辟了道路。

Superconducting flux qubits are promising candidates for the physical realization of a scalable quantum processor. Indeed, these circuits may have both a small decoherence rate and a large anharmonicity. These properties enable the application of fast quantum gates with high fidelity and reduce scaling limitations due to frequency crowding. The major difficulty of flux qubits' design consists of controlling precisely their transition energy - the so-called qubit gap - while keeping long and reproducible relaxation times. Solving this problem is challenging and requires extremely good control of e-beam lithography, oxidation parameters of the junctions and sample surface. Here we present measurements of a large batch of flux qubits and demonstrate a high level of reproducibility and control of qubit gaps, relaxation times and pure echo dephasing times. These results open the way for potential applications in the fields of quantum hybrid circuits and quantum computation.

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