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Magnetic field compatible circuit quantum electrodynamics with graphene Josephson junctions

机译:石墨烯约瑟夫逊结的磁场兼容电路量子电动力学

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摘要

Circuit quantum electrodynamics has proven to be a powerful tool to probe mesoscopic effects in hybrid systems and is used in several quantum computing (QC) proposals that require a transmon qubit able to operate in strong magnetic fields. To address this we integrate monolayer graphene Josephson junctions into microwave frequency superconducting circuits to create graphene based transmons. Using dispersive microwave spectroscopy we resolve graphene’s characteristic band dispersion and observe coherent electronic interference effects confirming the ballistic nature of our graphene Josephson junctions. We show that the monoatomic thickness of graphene renders the device insensitive to an applied magnetic field, allowing us to perform energy level spectroscopy of the circuit in a parallel magnetic field of 1 T, an order of magnitude higher than previous studies. These results establish graphene based superconducting circuits as a promising platform for QC and the study of mesoscopic quantum effects that appear in strong magnetic fields.
机译:电路量子电动力学已被证明是探测混合系统中介观效应的有力工具,并已用于一些要求跨界量子位能够在强磁场中工作的量子计算(QC)建议中。为了解决这个问题,我们将单层石墨烯约瑟夫森结集成到微波频率超导电路中,以创建基于石墨烯的跨子。使用色散微波光谱法,我们可以解决石墨烯的特征谱带色散,并观察相干电子干扰效应,从而证实了我们的石墨烯约瑟夫森结的弹道性质。我们显示出石墨烯的单原子厚度使该器件对所施加的磁场不敏感,从而使我们能够在1T的平行磁场中对电路进行能级光谱分析,这比以前的研究要高一个数量级。这些结果建立了基于石墨烯的超导电路,作为进行质量控制和研究在强磁场中出现的介观量子效应的有前途的平台。

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