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Multi-mode ultra-strong coupling in circuit quantum electrodynamics

机译:电路量子电动力学中的多模超强耦合

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With the introduction of superconducting circuits into the field of quantum optics, many experimental demonstrations of the quantum physics of an artificial atom coupled to a single-mode light field have been realized. Engineering such quantum systems offers the opportunity to explore extreme regimes of light-matter interaction that are inaccessible with natural systems. For instance the coupling strength g can be increased until it is comparable with the atomic or mode frequency ω a,m and the atom can be coupled to multiple modes which has always challenged our understanding of light-matter interaction. Here, we experimentally realize a transmon qubit in the ultra-strong coupling regime, reaching coupling ratios of g/ω m  = 0.19 and we measure multi-mode interactions through a hybridization of the qubit up to the fifth mode of the resonator. This is enabled by a qubit with 88% of its capacitance formed by a vacuum-gap capacitance with the center conductor of a coplanar waveguide resonator. In addition to potential applications in quantum information technologies due to its small size, this architecture offers the potential to further explore the regime of multi-mode ultra-strong coupling.
机译:随着超导电路被引入量子光学领域,已经实现了许多与单模光场耦合的人工原子的量子物理学实验证明。工程化这样的量子系统提供了探索自然系统无法达到的光与物质相互作用的极端机制的机会。例如,可以增加耦合强度g,直到它与原子或模式频率ωa,m相当为止,并且原子可以耦合到多种模式,这一直挑战着我们对光-物质相互作用的理解。在这里,我们通过实验实现了超强耦合态的跨极量子比特,达到g /ωm = 0.19的耦合比,并且我们通过量子比特直至谐振器的第五模的杂交来测量多模相互作用。这是由具有88%电容的量子比特实现的,该量子比特由与共面波导谐振器中心导体的真空间隙电容形成。由于其体积小,除了在量子信息技术中的潜在应用外,该体系结构还提供了进一步探索多模超强耦合机制的潜力。

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