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Engineering interactions between superconducting qubits and phononic nanostructures

机译:超导量子位与声子纳米结构之间的工程相互作用

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摘要

Nanomechanical systems can support highly coherent microwave-frequency excitations at cryogenic temperatures. However, generating sufficient coupling between these devices and superconducting quantum circuits is challenging due to the vastly different length scales of acoustic and electromagnetic excitations. Here we demonstrate a generalmethod for calculating piezoelectric interactions between quantum circuits and arbitrary phononic nanostructures. We illustrate our technique by studying the coupling between a transmon qubit and bulk acoustic-wave, Lamb-wave, and phononic crystal resonators, and show that very large coupling rates are possible in all three cases. Our results suggest a route to phononic circuits and systems that are nonlinear at the single-phonon level.
机译:纳米机械系统可以在低温下支持高度相干的微波频率激发。然而,由于声学和电磁激发的长度尺度差异很大,在这些设备与超导量子电路之间产生足够的耦合是一项挑战。在这里,我们演示了一种用于计算量子电路与任意声子纳米结构之间的压电相互作用的通用方法。我们通过研究transmon量子位与体声波,兰姆波和声子晶体谐振器之间的耦合来说明我们的技术,并表明在所有三种情况下都有可能实现非常大的耦合率。我们的结果提出了通往单声子级非线性的声子电路和系统的途径。

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