论文标题

使用超导量子队的量子散装声音谐振器的测量

Measurements of a quantum bulk acoustic resonator using a superconducting qubit

论文作者

Chou, M. -H., Dumur, É., Zhong, Y. P., Peairs, G. A., Bienfait, A., Chang, H. -S., Conner, C. R., Grebel, J., Povey, R. G., Satzinger, K. J., Cleland, A. N.

论文摘要

微波频率的声子模式可以使用常规的低温制冷冷却至其量子基态,从而提供了一种方便的方法来研究和操纵单声子水平的量子状态。声子特别感兴趣,因为机械变形可以介导与多种不同量子系统的相互作用,包括固态缺陷,超导码头以及使用光机械活性构建体时的光子光子。因此,声子对以传感,信息处理和通信等多样化为中心的量子应用有望。在这里,我们描述了一个具有4.88 GHz谐振频率的压电量子量子声音谐振器(QBAR),在低温温度下显示大型机电耦合强度与高内在机械质量因子$ q_i \ q_i \约4.3 \ times 10^4 $相结合。使用最近开发的翻转芯片技术,我们将此QBAR谐振器与单独的模具上的超导量子保持一致,并在耦合系统中展示了机械师的量子控制。这种方法有望采用量子声和杂种量子系统的轻松而灵活的实验方法。

Phonon modes at microwave frequencies can be cooled to their quantum ground state using conventional cryogenic refrigeration, providing a convenient way to study and manipulate quantum states at the single phonon level. Phonons are of particular interest because mechanical deformations can mediate interactions with a wide range of different quantum systems, including solid-state defects, superconducting qubits, as well as optical photons when using optomechanically-active constructs. Phonons thus hold promise for quantum-focused applications as diverse as sensing, information processing, and communication. Here, we describe a piezoelectric quantum bulk acoustic resonator (QBAR) with a 4.88 GHz resonant frequency that at cryogenic temperatures displays large electromechanical coupling strength combined with a high intrinsic mechanical quality factor $Q_i \approx 4.3 \times 10^4$. Using a recently-developed flip-chip technique, we couple this QBAR resonator to a superconducting qubit on a separate die and demonstrate quantum control of the mechanics in the coupled system. This approach promises a facile and flexible experimental approach to quantum acoustics and hybrid quantum systems.

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