Power dependent dynamics of the 2nd excited state of a Transmon qubit

Jeakyung Choi, Heyok Hwang, Eunseong Kim
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Abstract

A qubit, the quantum counterpart of the classical binary digit, can be constructed based on a system with two possible quantum states. For instance, superconducting circuits have been employed to construct an artificial atom in which ground and excited states are used for two quantum states. The anharmonicity of an artificial atom distinguishes the higher-order excited states from two possible quantum states, although they can interact with the cavity as well. The interaction can be important when a large number of photons are allowed in the cavity and results in a nonlinear effect on a Transmon-cavity system. We studied power-dependent nonlinear behaviors of a Transmon-cavity system. The system exhibits dramatic shifts from a dispersive coupling at a low power regime to punch-out behaviors at high powers. This nonlinearity provides us high fidelity readouts for 2nd excited state as well as 1st excited state.[1]
Transmon量子比特第二激发态的功率依赖动力学
量子比特,经典二进制数字的量子对应物,可以基于具有两种可能量子态的系统构建。例如,超导电路已经被用来构建一个人造原子,其中基态和激发态被用于两个量子态。人工原子的非调和性将高阶激发态与两种可能的量子态区分开来,尽管它们也可以与腔相互作用。当允许大量光子进入腔内并导致Transmon-cavity系统的非线性效应时,这种相互作用可能是重要的。我们研究了一个Transmon-cavity系统的功率相关非线性行为。系统表现出从低功率下的色散耦合到高功率下的打孔行为的巨大转变。这种非线性为我们提供了高保真的第二激发态和第一激发态读数
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