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Random access quantum information processors using multimode circuit quantum electrodynamics

机译:使用多模电路量子电动力学的随机访问量子信息处理器

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Qubit connectivity is an important property of a quantum processor, with an ideal processor having random access—the ability of arbitrary qubit pairs to interact directly. This a challenge with superconducting circuits, as state-of-the-art architectures rely on only nearest-neighbor coupling. Here, we implement a random access superconducting quantum information processor, demonstrating universal operations on a nine-qubit memory, with a Josephson junction transmon circuit serving as the central processor. The quantum memory uses the eigenmodes of a linear array of coupled superconducting resonators. We selectively stimulate vacuum Rabi oscillations between the transmon and individual eigenmodes through parametric flux modulation of the transmon frequency. Utilizing these oscillations, we perform a universal set of quantum gates on 38 arbitrary pairs of modes and prepare multimode entangled states, all using only two control lines. We thus achieve hardware-efficient random access multi-qubit control in an architecture compatible with long-lived microwave cavity-based quantum memories.
机译:量子位连接性是量子处理器的重要属性,理想的处理器具有随机访问权限-任意量子位对直接交互的能力。对于超导电路而言,这是一个挑战,因为最新的体系结构仅依赖于最近的邻居耦合。在这里,我们实现了一个随机访问超导量子信息处理器,在一个9量子位的存储器上演示了通用操作,其中约瑟夫森结变换门电路用作中央处理器。量子存储器使用耦合超导谐振器的线性阵列的本征模。我们通过跨子频率的参数通量调制有选择地激发跨子和本征模式之间的真空拉比振荡。利用这些振荡,我们仅使用两条控制线就可以在38对任意模式对上执行一组通用的量子门,并准备多模纠缠态。因此,我们在与基于微波腔的长寿命量子存储器兼容的架构中实现了硬件有效的随机访问多量子位控制。

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